Branch of Technology
[0001] The present invention relates to preset indispensable compositions of Na
2O, Fe
2O
3, Al
2O
3, SiO
2, CaO, MgO or TiO
2 and BaO in a special scope, as well as technical solutions for the compositions whose
special ratios are preset among SiO
2, CaO and MgO, which overcomes the technical prejudice that sodium or boron composition
is necessary to form the fluxing composition; the key lies in the using of the technical
solution invented from ratio of silicon, calcium and magnesium elements, and the technical
solution invented with sodium or boron element omitted, producing expected new eutectoid
with high annealing point and fluxing function or high Al
2O
3 content as well as the strength increased by 1-3 times; on the premise of energy
saving, no boron poison gas emission and high quality control, the investment production
efficiency is increased by 10-30 times, and new product properties as well as new
purpose and function are brought about; a flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity and its preparation method, a display that uses the
said glass, the substrate glass and outer cover glass of a photovoltaic solar device
are formed.
[0002] The subject invention is to reveal and provide an invention of changes in the ratio
of silicon, calcium, and magnesium; comparing all the elements of the prior art for
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity, selection of the
ratio of silicon, calcium and magnesium end values, omission of conventional fluxing
ingredients such as sodium and boron, and selection of the range of other ingredients,
each new purpose of flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity reveals the new properties of the products and produces a variety of unexpected
technical effects.
Background Art
[0003] The flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity for modem
flat buildings and industrial purpose manufactured by adopting float process, horizontal
drawing process, Glaverbel process, calendaring process or overflow process, such
as (1) door, window and wall glass for buildings, (2) glass for automobile and ship,
(3) glass for high-speed rail, (4) LCD glass, (5) PDP glass, (6) TFT glass and high-strength
panel glass for smartphone and iPad and (7) craft glass, has significant defects in
the formula of production process as well as a technical prejudice; it adopts Na
2O or B
2O
3 to melt SiO
2; in the process of conventional melting technology, there is a technical prejudice
for eutectic compositions; it is limited to the inherent compositions of silicon,
calcium and aluminum; the viscosity is still not high even though about 13% Na
2O or 8-15% B
2O
3 is added; a great deal of Al
2O
3 is not suggested to be added to enhance the product strength and annealing point,
because by this way will it make the products in the prior art fail to control the
product quality and output at higher viscosity temperature; besides, its energy-saving
effect and strength are rather poor; particularly, boron volatilizes greatly, which
makes the production of all existing alkali-free boron glass cause serious environmental
problems.
- (1) The prior art for alkali-free boron glass is represented alkali-free LCD glass
with patent No. US2002/0011080A; in the technical solution for compositions, its patent material proposes that the
content of SiO2 is up to 40-70%; in this kind of boron glass and embodiment, silicon occupies between
60-70% while the content of B2O3 is 5-20%; in actual use, the content of B2O3 in the product is up to 8%-15%, which aims to replace Na2O by B2O3 and achieve the purpose of fluxing; if the boron content is over 8%, 2-3 times of
raw materials must be added; if the boron content is 10%, the raw material of 25-30%
B2O3 content must be added (because most of them will become toxic gases and volatilize
at a high temperature); its first technical defect lies in that its silicon content
is too high, and the silicon is not easily melted; its second technical defect lies
in that it will cause serious environmental damage; its third technical defect lies
in that the molten pool will be severely corroded in actual production when the boron
content is up to 5-20%; (therefore, all TFT LCD will be conducted with cold repair
when high-boron glass molten pool is used only in one year; this will cause serious
problems such as work efficiency and cost; the boron content is too high particularly
when boron glass for flat LCD is manufactured; with the same content of Al2O3, it will lower the strength by one time; all existing LCD glass can only be manufactured
by overflow due to its high boron content; its output is only 6-10 tons/day, which
is equal to 5% or less output by float process (e.g.: minimally 150 tons/day); moreover,
there is only one overflow production line with 6-10tons/day; its equipment cost is
2-3 times that of the float line with 150 tons/day; therefore, it has become an industrial
difficulty that is expected to be solved as to how to reduce the cost and improve
the efficiency in the production of liquid crystal glass, conduct cold repair every
10 years like the common float glasswork and achieve viscosity reduction and energy
saving.
- (2) The existing soda-lime flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity includes [1] door, window and wall glass for buildings, [2] glass for automobile
and ship, [3] glass for high-speed rail, [4] PDP glass and [5] craft glass; due to
limited acknowledgement for its melt compositions, the viscosity temperature is higher
than that of the present invention (150°C-200°C) in the process of melting and bubble
discharge and homogenization; the energy is greatly consumed during production; every
kilogram of the melt consumes 1, 500 kilocalorie or higher.
- (3) In the application of glass for automobile and high-speed rail, the existing industrial
glass products do not have too high flexural strength and impact resistance; if the
strength of automobile glass is poor, its safety is not guaranteed well; the ship
glass is usually destroyed by sea waves; in particular, there is still a big gap in
the requirements of impact resistance of automobile glass.
- (4) As the flexural strength of existing industrial glass products is low (normally
about or less than 50MPa), and its impact resistance is much poorer; therefore, the
glass in the front of airplane and in the left and right windows needs to be thickened;
this will increase the weight and affect the dead weight of airplane and sight sharpness.
- (5) In architectural application, its use scope is also greatly limited due to the
low annealing point and the limit of strength performance of existing glass product;
it is necessary to make it light, thin, high-strength and energy-saving.
- (6) In the prior art, fireproof glass, hot plate glass, oven glass, microwave oven
glass, panel glass for kitchen or dining table and existing soda-lime glass do not
have such excellent linear characteristics with even ascending and descending in terms
of expansion rate; its viscoelasticity changes a lot; cracking happens easily; therefore,
it has some defects in this application.
- (7) In addition, there is "crystallized glass having natural-marble-like surface patterns
and method of producing the same" with a publication number CN1053047A; its process rather than the product compositions has determined its inevitable product
defects.
- 1. Its process is stated as: collect the small frit in molding case, heave... crystal
entered from the glass surface into the internal part; the frits are melted and mixed;
control the frit size..., obtain the appearances of marble and granite patterns; in
this document, a lot of statements are about crystallization process, so it can be
seen that it adopts a neoceramic glass process with color patterns for granule viscous-melt
crystallization.
Its color patterns and non-transparency is obviously not determined by material compositions;
the product's crystal, colors and patterns are determined by adding every glass granule
from its surface to the internal part with the process method stated in the application
document; therefore, every granule is filled with crystals from outside to inside;
it is not transparent, so it is impossible to make such a product which has good visible
light transmittance of 65%-95%; theses defects need to be overcome.
In its process, it is made with different granular materials to have its glass material
softened, deformed and melted each other... meanwhile, the separated glass crystal
conforms to the size and shape of small frits (see P7). The insiders all know that
the uppermost defect is that the product is loose when granules are distributed, so
the sintered product has a lot of uneven parts on its surface; like all neoceramic
glass, this kind of granules are growing, various granule shapes make the surface
unevenness remain between 0.5mm-1.5mm; moreover, in this frame forming process, the
product surface is rather uneven, the frame is sintered with refractory material,
the unevenness of its surface and quadrangles is more and more significant as it is
sintered and deformed each time, so the thickness difference of its finished product
goes between 1.5mm-2mm, both sides of all the products need to be slicked and polished
with the thickness of at least 1mm-2mm; even if they are slicked and polished, the
thickness difference of its product is more than 1mm as well, so it suffers great
defect and waste. This is a far difference from the thickness difference within 0.3mm
for the glass of the present invention and the normal flat glass. This defect is completely
caused by its process rather than material compositions; moreover, its technical solution
does not contain Fe2O3, TiO2 and BaO, which is different from the present invention. So these defects need to
be overcome.
- (8) As for the application number 2008801044692 (publication number CN101784494A) "glass plate and its method of producing the same and the method of producing TFT
panel" in the prior art, the sodium content is 0-9% in its published technical solution;
when its content is more than 2%, the circuit will be severely eroded in the heating
process; moreover, when the viscosity is 102 Pa·s in its technical solution, the temperature is up to 1,690□, and it also reveals
that 1,670□ will be better; when the viscosity is 104 Pa·s, the temperature is up to 1,300□, and it reveals that 1,280□ will be better
and treated as the process temperature for bubble discharge; obviously, the bubble
discharge will be rather difficult, and the homogenization is difficult as well. The
melted raw material at 1,670□-1,690□ has too much erosion against the refractory material,
featuring high cost, huge energy consumption and difficult melting, easily generating
stones and slag points and resulting in low rate of finished products.
Summary
[0004] In view of the above prior art defects and shortcomings, the inventor makes positive
research and innovation to overcome the prior art shortcomings and defects based on
the practical experience and expertise for years in design and manufacturing of this
kind of product; after solving the complex problems in production process, a novel
technical solution is proposed: preset and indispensable compositions with practical
vale and in a special scope such as Al
2O
3, Na
2O, Fe
2O
3, SiO
2, CaO, MgO or TiO
2 and BaO manufactured by float process, horizontal drawing process, overflow process
or calendaring process and technical solutions for the compositions whose special
ratios are preset among SiO
2, CaO and MgO; it has overcome the technical prejudice of all conventional fluxing
compositions and sodium or boron composition that is used to form the fluxing composition;
it can produce unexpected flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity with high annealing point and fluxing function or eutectic function as well
as the strength increased by 1.3 times; it can also produce a technical effect in
environmental protection, energy-saving and emission reduction.
[0005] The first embodiment of the present invention provides a flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity, characterized in that: the said glass
contains SiO
2, CaO, MgO, Al
2O
3, Fe
2O
3 and Na
2O, Calculated as per weight percentage, the said flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity contains B
2O
3 0-3.9%, Na
2O 0.01-14%, Fe
2O
3 0.01-5%, F
2O 0-2.8%, MgO 8.1-22.2% and Al
2O
3 0.01-39%, wherein the content of SiO
2 is 1.9-4.1 times that of CaO, and the content of CaO is 1.2-1.6 times that of MgO;
the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 550°C-710°C; the thickness difference of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is less than 0.3mm; the water absorption
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 0- 0.3%; the flexural strength of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is up to 50-180Mpa.
[0006] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 0.01-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,230°C; the flexural strength
of the said flat glass is 50-180Mpa.
[0007] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 0.01-19%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,580°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,520°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,310°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,160°C; the flexural strength
of the said flat glass is 50-180Mpa.
[0008] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 19-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,080°C-1,230°C; the flexural strength
of the said flat glass is 130-180Mpa.
[0009] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 8-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,230°C; the flexural strength
of the said flat glass is 75-180Mpa.
[0010] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the said flat glass contains Al
2O
3 19-30%, SiO
2 0-1%, Na
2O 0.01-2% and F
2O 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,510°C-1,680°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,420°C-1,600°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,270°C-1,360°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,160°C-1,280°C; the flexural strength
of the said flat glass is 120-180Mpa.
[0011] In addition, on the basis of the above first embodiment and according to the said
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity in the embodiment
of the present invention, the surface of the said flat glass is attached with a layer
of polycrystalline silicon sintered by and transferred from noncrystalline silicon.
[0012] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the embodiment of the present invention, the said flat glass contains
a resin bed with quartz, Al
2O
3 or mullite crystal.
[0013] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of TiO
2 is 1.3-1.49%.
[0014] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 3.1-39%.
[0015] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of TiO
2 is 0.0003-4.9%.
[0016] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, (1) Calculated as per weight
percentage, in its product contents: ① MgO is 7-20%; ② the content of CaO is 1.0-1.8
time(s) that of MgO; ③ SiO
2 is 2.6-5.6 times that of MgO; ④SiO
2 is 2.2-3.8 times that of CaO; ⑤Al
2O
3 is 0.1-30%; ⑥ Na
2O is 0-18%; ⑦BAO is 0-5%; (2) strain point temperature of its product goes between
560°C-720°C; (3) the water absorption of its product goes between 0-0.001%; (4) Calculated
as per weight percentage, the total content of MgO, CaO and SiO
2 in its product is 51%-100%.
[0017] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, in its product: the content of CaO is 1.15-1.8 times that of MgO.
[0018] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, the visible light
transmittance of the said glass goes between 40%-95%; calculated as per weight percentage,
the total content of SiO
2, CaO and MgO in it is 51%-99.8%, and the content of BaO is 0.01-14%.
[0019] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of CaO is 1.3-1.6 times that of MgO, the content
of SiO
2 is 1.0-3.6 time(s) that of CaO, the content of MgO is 10.1-19.9% and the content
of Al
2O
3 is 19-39%.
[0020] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, (1) calculated
as per weight percentage, in its product contents: ① the content of CaO is 0.6-2.4
times that of MgO, ② the content of SiO
2 is 1.3-5.8 times that of MgO, ③ the content of SiO
2 is 1.3-5.8 times that of CaO, ④ the content of Al
2O
3 is 0.1-30%, ⑤ the content of Na
2O is 0-18%, ⑥ the content of BaO is 0-20%; (2) the total content of MgO, CaO and SiO
2 in its product is 51%-99.9%; (3) the water absorption of its product goes between
0-0.001 %.
[0021] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, (1) calculated
as per weight percentage, in its product contents: ① the content of MgO is 7-20%,
② the content of CaO is 1.0-1.8 time(s) that of MgO, ③ the content of SiO
2 is 2.6-5.6 times that of MgO, ④ the content of SiO
2 is 1.2-3.8 times that of CaO, ⑤ the content of Al
2O
3 is 0.1-30%, ⑥ the content of Na
2O is 0-18%, ⑦ the content of BaO is 0-5%; (2) the strain point temperature of its
product goes between 560°C-720°C; (3) the water absorption of its product goes between
0-0.001%; (4) calculated as per weight percentage, the total content of MgO, CaO and
SiO
2 in its product is 51%-99.9%.
[0022] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, (1) calculated
as per weight percentage, in its product contents: ① the content of MgO is 9.1-22%,
② the content of CaO is 0.6-2.0 times that of MgO, ③ the content of SiO
2 is 2.8-5.6 times that of MgO, ④ the content of SiO
2 is 2.3-3.8 times that of CaO, ⑤ the content of Al
2O
3 is 0.1-30%, ⑥ the content of Na
2O is 0-18%, ⑦ the content of BaO is 0-5%; (2) the strain point temperature of its
product goes between 560°C-720°C; (3) the water absorption of its product goes between
0-0.001%; (4) calculated as per weight percentage, the total content of MgO, CaO and
SiO
2 in its product is 51%-99.9%.
[0023] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, when the content of Al
2O
3 in its product is 0-3.8%: the melting process temperature is 1,300°C-1,400°Cat 10
1 Pa•s; the process temperature for clarified and bubble discharge is 1,120°C-1,260°Cat
10
2 Pa•s; the forming process temperature is 1,010°C-1,060°C at 10
3 Pa•s; the flexural strength of its product is up to 60-100Mpa.
[0024] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, when the content of Al
2O
3 in its product is 3.8-15%: the melting process temperature is 1,320°C-1,430°C at
10
1 Pa•s; the process temperature for clarified and bubble discharge is 1,140°C - 1,290°C
at 10
2 Pa•s; the forming process temperature is 1,040°C-1,130°C at 10
3 Pa•s; the flexural strength of its product is up to 80-130Mpa.
[0025] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, when the content of Al
2O
3 in its product is 15-23%: the melting process temperature is 1,360°C-1,550°Cat 10
1 Pa•s; the process temperature for clarified and bubble discharge is 1,250°C-1,430°C
at 10
2 Pa•s; the forming process temperature is 1,060°C-1,200°C at 10
3 Pa•s; the flexural strength of its product is up to 100-180Mpa.
[0026] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, the said glass
contains SiO
2, MgO and CaO, and wherein, calculated as per weight percentage, in the said glass,
the content of SiO
2 is 2.1-6.5 times that of MgO, and the content of SiO
2 is 1.8-4.6 times that of CaO; the thickness difference of the said glass is less
than 0.3mm; the visible light transmittance of the said glass goes between 65%-95%;
the water absorption of the said glass goes between 0-0.3%; the flexural strength
is up to 50-180Mpa.
[0027] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, in the said glass, the content of SiO
2 is 2.6-5 times that of MgO, and the content of SiO
2 is 2.4-3.4 times that of CaO.
[0028] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of CaO is 1.0-1.6 time(s) that of MgO, preferentially 1.2-1.5
times.
[0029] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, the undulating range of
the waviness of the said glass at 20 ram is 0-0.03mm.
[0030] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Li
2O is 0.01-5%.
[0031] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of SrO is 0.005-8%.
[0032] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of PuO
2 is 0.01-5%.
[0033] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of As
2O
2 is 0.01-3%.
[0034] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of Na
2O is 0.01-0.99%.
[0035] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of Na
2O is 0.01-2%.
[0036] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of Na
2O is 2-8%.
[0037] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of Na
2O is 2-14%.
[0038] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 0.1-3%.
[0039] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 3.1-19%.
[0040] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the content of Al
2O
3 is 10-19%.
[0041] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 0.1-3%.
[0042] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, wherein, calculated as
per weight percentage, the content of Al
2O
3 is 3.1-19%.
[0043] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, calculated as per weight
percentage, the thickness of the said glass is 0.3-1.8mm.
[0044] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, the thickness of the said
glass is 1.8mm-5mm.
[0045] According to the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the first embodiment of the present invention, wherein, the thickness of the said
glass is 5-20mm.
[0046] The second embodiment of the present invention provides a preparation method to prepare
the above flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity,
characterized in that: Step 1 : All preset and indispensable compositions in a special
scope such as Na
2O, Fe
2O
3, Al
2O
3, SiO
2, CaO, MgO or TiO
2 and BaO and raw materials whose special ratios are preset among SiO
2, CaO and MgO are required by any of the said glass formula and configuration in the
first embodiment; after being mixed and stirred, they are melted under the melting
temperature for each glass formula to form the liquid glass with preset viscosity;
then, they are homogenized and clarified and discharge bubbles to form flowing molten
mass; Step 2: The glass is molded by adopting float process, horizontal drawing process,
Glaverbel process, calendaring process or overflow process.
[0047] According to the method of the second embodiment of the present invention, wherein,
the said step 1 includes: Place the prepared raw materials into the corresponding
containers to make them pass through the conveyor lines of raw materials; after being
measured, they are put into the mixing apparatus according to the proportion; after
being stirred and mixed, they are put into the bulk material pipe or feed bin; put
the formulated raw materials into molten pool to have them melted under the melting
temperature of the glass and form the liquid glass with preset viscosity; then, they
are homogenized and clarified and discharge bubbles to form flowing molten mass; float
process used in step 2: Tin kiln is prepared in advance in this process; after the
process of step 1, the flowing molten mass at the tail of molten pool flows into the
tin kiln for such processes as smoothening, polishing and thinness drawing; then,
it is drawn by edge-pulling machine according to the direction specified by the process
and pulled by the dragger; it is pulled out of tin trough, and then it is cooled and
annealed After being cooled and cut, the said glass is manufactured.
[0048] According to the method of the second embodiment of the present invention, wherein,
calculated as per weight percentage, the content of Al
2O
3 in the said glass is 30%; when the viscosity is 10
0.5Pa·s, the temperature of the said glass is 1,480°C-1,640°C; when the viscosity is
10
1 Pa•s, the temperature of the said glass is 1,410°C-1,600°C; when the viscosity is
10
2 Pa•s, the temperature of the said glass is 1,180°C-1,340°C; when the viscosity is
10
3 Pa•s, the temperature of the said glass is 1,040°C-1,220°C; the thickness difference
of the said glass is less than 0.3mm; the visible light transmittance of the said
glass goes between 40%-95%; the water absorption of the said glass goes between 0-0.3%;
the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said glass goes between 550°C-710°C; the flexural strength of the said glass
is 50-180MPa; the difference of thermal expansion coefficient of the said glass is
1.0-3.0ppm between 150°C-300°C; the difference of thermal expansion coefficient of
the said glass is 1.0-2.8ppm between 550°C-600°C.
[0049] The third embodiment of the present invention provides a LCD including an array substrate
which includes a base and a pixel structure of the said base that is a glass plate
manufactured with the flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity as set forth in any of the first embodiment, a color filter substrate which
includes a base and a color filter layer of the said base that is a glass plate manufactured
with the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
as set forth in any of the first embodiment, a liquid crystal layer that is clamped
between the said array substrate and the said base of color filter layer and backlight
system.
[0050] The fourth embodiment of the present invention provides a photovoltaic solar device,
including solar battery, glass substrate or outer cover plate manufactured with the
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity as set forth in
any of the above embodiments.
Description of figures
[0051]
Fig. 1 is a plan diagram of a flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity product;
Fig. 2 is a flow diagram of a float process forming of preparation process of a flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity;
Fig. 3 is a side section diagram of a float process forming state of preparation process
of a flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity. Description
of figure marks
- 1. flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity
- 2. Inlet of feed bin
- 3. Feed bin
- 4. Present prepared mixing raw material
- 5. Raw materials entering the mouth of molten pool kiln of molten pool
- 6. Molten pool kiln
- 7. Diversion trough
- 8. Tin trough
- 9. Transitional roller
- 10. Annealing kiln
- 11. Cutting and sub-packing platform
- 12. Float production line matrix
Embodiments
[0052] A detailed description for the embodiments of the present invention is given as follows;
(Unless otherwise specified in the specification, the contents of all compositions
of the glass are calculated as per weight percentage).
The first embodiment
[0053] The first embodiment of the present invention provides a flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity which contains SiO
2, CaO, MgO, Al
2O
3, Fe
2O
3 and Na
2O; calculated as per weight percentage, the said flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity contains B
2O
3 0-3.9%, Na
2O 0.01-14%, Fe
2O
3 0.01-5%, F
2O 0-2.8%, MgO 8.1-22.2% and Al
2O
3 0.01-39%, wherein the content of SiO
2 is 1.9-4.1 times that of CaO, and the content of CaO is 1.2-1.6 times that of MgO;
the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 550°C-710°C; the thickness difference of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is less than 0.3mm; the water absorption
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 0- 0.3%; the flexural strength of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is up to 50-180Mpa.
[0054] The prior art of the flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity such as soda-lime glass, PDP glass and LCD alkali-free boron glass have
3-5or 4-5 differences compared with the technical elements of the technical solutions
of the present invention. (Refer to Table 1, 2 and 3)
Viscosity performance
[0055] The viscosity of the embodiments of the present invention is measured by US THAT
high-temperature rotary viscosimeter.
[0056] Seen from the embodiments in Table 1, 2 and 3 and compared with several key viscosity
data (in case of 28% Al
2O
3):
- (1) Melting temperature: According to the embodiment of the present invention, the
temperature of a flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
is 1,540°C-1,620°C when the viscosity is 100.5 Pa•s; the temperature of a flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity is 1,450°C-1,520°C when the viscosity is 101 Pa•s.
[0057] In an alkali-free boron glass for LCD whose application content and the prior art
is set forth in PDP and TFT LCD panel glass enterprise's application number
2008801044692 (publication number
CN101784494A) "Glass plate and its method of producing the same and the method of producing TFT
panel", its melting temperature at 10
5 Pa•s and 10
1 Pa•s is much higher than 1,650°C-1,700°C; therefore, its US viscosity cannot be measured
by THAT high-temperature rotary viscosimeter; in particular, the melting temperature
of the conventional soda-lime glass (containing only 1% Al
2O
3) can be measured as 1,580°C at 10
1.5 Pa•s; as is stated in P14 of its specification, the relatively proper temperature
is 1,690°C at 10
2 Pa•s and the more proper temperature is 1,670°C; these are all the basic values for
the viscosity of the LCD glass; its melting temperature is higher than the temperature
in the present invention at 10
0.5 Pa•s or 10
1 Pa•s, and it is the temperature at 10
2 Pa•s for clarified and discharges bubbles at a difference of several hundred Celsius
degrees; the temperature for each embodiment is 1,230°C-1,300°C when the content of
Al
2O
3 in the present invention is within 28%; the temperature of the above soda-lime glass
with low-level prior art goes between 1,380°C-1,400°C, and such temperature for alkali-free
high-boron glass cannot be measured by a tester (the tested temperature is higher
than 1,600°C); compared with the above patent, the preferred temperature for PDP glass
is 1,690-1,670°C.
[0058] From the temperature under the forming viscosity 10
3 Pa•s, the temperature of each embodiment is 1,090°C-1,160°C when the content of Al
2O
3 in the present invention is within 28%; the temperature of the existing soda-lime
glass is 1,210°C-1,250°C, and the temperature of alkali-free high-boron glass and
PDP glass is up to 1,380°C-1,420°C,Since the viscosity performance of the present
invention is much better, the insiders all know that compared with the production
of prior art, the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
with fewer bubble defects, fewer slag points, better waviness, better quality and
higher rate of finished product can be available, and display glass with good quality
and less thickness such as 0.5mm, 0.3mm and 0.2mm can be manufactured.
Strength performance
[0059] In the present invention, the content of Al
2O
3 can be up to 19-28%, and the strength can be about 140-160MPa or180MPa which is much
higher that 2-3 times of strength of the flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity made the prior art; the viscosity temperature is 150°C-250°Clower
than that the prior art when the content of Al
2O
3 is only 1-25%; therefore, if the viscosity of alkali-free high-boron glass is formed
by the technical solution of the present invention, then there will be much room for
melting viscosity and strength when the content of Al
2O
3 is raised to be 29-39%; the flexural strength of the glass in the embodiment f the
present specification and invention is cut into pieces with a dimension of 50mm×50mm×5mm
and measured in accordance with GB/T3810.4-2006.
[0060] B
2O
3 in the alkali-free high-boron glass made the prior art volatilizes, which will result
in uneven compositions, damage the net structure related to Al
2O
3 and thus greatly impact the due strength.
[0061] This is the important reason why the strength of the alkali-free high-boron glass
is relatively poor even though it contains 7-15% Al
2O
3.
[0062] The above is also the advantage for strength improvement without boron in the technical
solution of the present invention.
[0063] The linear characteristics of expansion coefficient of the present invention are
outstanding, and few changes are witnessed at different ranges of temperature.
[0064] The expansion coefficient of the glass as set forth in the embodiment of the present
invention is determined in accordance with GB/T7320.1-2000.
- (1) The conventional technical prejudice is that Al2O3 is added to enhance the strain point temperature (the strain point temperature is
the lower limit of the annealing temperature for the glass when it is formed.); the
purpose of having the strain point reached 550°C-600°C, 600°C-650°C or 650°C above
lies in that no more deformation or cracks are found when it is under relatively high
temperature, the product is heated or cooled radically; however, the technical solution
of the present invention has better linear characteristics of expansion coefficient
and produces few abrupt changes over glass viscoelasticity; the difference of thermal
expansion coefficient of the said glass is 1.0-3.0ppm between 150°C-300°C; the difference
of alkali-free glass is 1-3.0ppm between 600°C-650°C; in display, it is 5-16 times
as much as 16ppm, a difference value of thermal expansion coefficient at 550°C-600°C
for plasma PDP glass or LCD TFT glass as well as 7-20 times as much as 20ppm, a difference
value of thermal expansion coefficient at 550°C-600°C for LCD soda-lime glass.
[0065] This also provides a wide range of process selections as to whether Al
2O
3 is added or not for fireproof glass, glass for cooking utensils, glass for microwave
oven and stoves, LCD glass, PDP glass and TFT glass etc; when it is applied under
a use environment related to the process with ascending or descending temperature
changes, industry, daily use and building, it will have great advantages such as little
deformation, good stability, no abrupt changes, no cracks and radical reduction of
glass viscoelasticity with ascending or descending temperature changes.
[0066] Compared with the advantages of TFT-LCD glass substrate: The present invention can
control the difference (1-3.0ppm) of expansion coefficient of sintering at ascending
temperature (such as 150°C-300°C, 550°C-600°C or 600°C-650°C) in the key sintering
areas with descending temperature changes, therefore, it has actually been developed
into a new functional material; then, it can be manufactured into LCD which has more
than ten BPPs higher definition than all LCDs nowadays and takes alkali-free glass
as a substrate, can creatively enhance a higher level and be understood by the electronics
insiders, makes it a core technology and creates the latest and most advanced level
in the world; it can also manufacture thinner (such as 0.2-0.5mm thickness) and lighter
LCD products which have greater sizes and high BPPs; liquid crystal mobile phone,
TV, handheld TV, laptop, flat-pane PC and flat-panel TV will have higher definitions
(BPPs) and resolutions, and their new technical quality will be available as well.
Advantages of energy saving and emission reduction
[0067] Since its melting viscosity temperature is lower than 200°C-300°C for the prior art
and the energy consumption is mainly in the high-temperature area, it can save 30-40%
energy and reduce the emission of CO
2 by 30-40%.
[0068] It can save equipment cost, cold repair cost and unnecessary cost of the prior art
and process.
[0069] Since the melting temperature is greatly reduced and the erosion to refractory materials
is greatly reduced, which will significantly prolongs the service life of smelter
and greatly reduce the cold repair time and expense that severely affect the production
output; for example, alkali-free boron glass, especially TFT liquid crystal glass,
requires cold repair every 8-10 months, which results in production stopping at least
for 2-3 months; moreover, the refractory materials used are high-zirconia materials,
and the material cost will be 3-4 times higher than before; in addition, a large number
of materials are replaced every year; the service life of the molten pool for manufacturing
the glass in the embodiment of the present invention is longer than the alkali-free
glass, and the viscosity of the glass in the embodiment of the present invention is
lower than float soda-lime glass; moreover, it can completely contain no boron and
be used at least for 10 years before the cold repair is conducted.
[0070] Therefore, various patent literatures for PDP plasma glass or TFT LCD glass and the
real implementation process propose the processes to add oxygen blowing, bubble discharge
and shallow pool equipment, which have high cost and low efficiency, and TFT glass
uses expensive platinum as the bubble discharge channel, greatly increasing the temperature;
for a small stove of 6-7 tons daily production, the platinum channel cost is 0.3-0.5
billion yuan; to reach 150 tons daily output, the platinum channels amount to nearly
10 billion yuan, which is high in cost and low in efficiency.
Water absorption
[0071] The water absorption of the glass as set forth in the embodiment of the present invention
is determined in accordance with GB/T3810.3-2006.
[0072] The water absorption of its product as set forth in the glass embodiment of the present
invention goes between 0- 0.3%.
[0073] In addition, LCD, PDP and TFT glass as set forth in the glass embodiment of the present
invention has good transparency and waterproofness.
The thickness difference (is measured in accordance with GB/T1216)
[0074] The thickness difference of the said glass as set forth in the glass embodiment of
the present invention is less than 0.3mm.
[0075] In addition, the glass can be manufactured to be transparent, conforming to the transparency
characteristics in the related field; the visible light transmittance of the said
glass goes between 40%-95% (and is measured in accordance with GB/T2680); To detail
the technical solutions of the embodiment of the present invention, Table 1 lists
the technical solutions and the corresponding performances for a flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity sample as set forth in the embodiment
of the present invention.
Table 1
Sample No. |
Sample 1 |
Sample 2 |
Sample 3 |
Sample 4 |
Sample 5 |
Sample 6 |
Sample 7 |
Sample 8 |
Sample 9 |
Sample 10 |
Sample 11 |
SiO2: CaO |
About 1.9 |
About 2.0 |
About 4.1 |
About 4.1 |
About 2.5 |
About 2.1 |
About 2.3 |
About 2.5 |
About 2.9 |
About 3.3 |
About 3.6 |
CaO: MgO |
About 1.2 |
About 1.6 |
About 1.2 |
About 1.6 |
About 1.4 |
About 1.4 |
About 14.5 |
About 1.4 |
About 1.4 |
About 1.3 |
About 1.2 |
MgO content (wt %) |
20.7 |
15.8 |
11.2 |
10.5 |
11.1 |
13.3 |
11.7 |
11.8 |
12 |
11.1 |
11.5 |
CaO content (wt %) |
25.2 |
24.5 |
13.8 |
16.5 |
15.2 |
18.5 |
17 |
16.5 |
16.8 |
14.4 |
14 |
SiO2 content (wt %) |
48.4 |
50 |
56.1 |
67 |
38.2 |
39.2 |
39.3 |
41.2 |
48.7 |
47.6 |
50 |
Total content of SiO2, CaO and MgO (wt%) |
94.3 |
90.3 |
81.1 |
94 |
64.5 |
71 |
68 |
69.5 |
77.5 |
73.1 |
75.5 |
Fe2O3 content (wt %) |
0.1 |
0.15 |
0.2 |
0.2 |
0.3 |
0.1 |
0.2 |
0.1 |
0.1 |
1.3 |
1.2 |
Al2O3 (wt%) |
3.6 |
4 |
12.7 |
3.1 |
25 |
20 |
30 |
28 |
20 |
23 |
16 |
Na2O content (wt %) |
1 |
5 |
5 |
1.9 |
2 |
2 |
0.5 |
1 |
1 |
1 |
5 |
BaO content (wt %) |
0.8 |
/ |
0.8 |
/ |
5.7 |
4.9 |
0.5 |
0.4 |
0.4 |
1 |
1.3 |
B2O3 content (wt %) |
/ |
/ |
/ |
/ |
/ |
/ |
0.5 |
/ |
/ |
/ |
/ |
TiO2 content (wt %) |
0.2 |
0.55 |
0.2 |
0.8 |
2.5 |
2 |
0.3 |
1 |
1 |
0.6 |
1 |
Lower limit of annealing temperature (endother mic peak threshold temperatur e)(°C) |
About 600 above |
About 590 above |
About 590 above |
About 590 above |
About 630 above |
About 630 above |
About 650 above |
About 650 above |
About 630 above |
About 630 above |
About 590 above |
Flexural strength (MPa) |
About 60-80 |
About 60-80 |
About 80-10 0 |
About 70-80 |
About 145-15 5 |
About 130-15 0 |
About 160-18 0 |
About 150-17 0 |
About 135-15 0 |
About 140-16 0 |
About 90-11 0 |
Note: Lower limit of annealing temperature (endothermic peak threshold temperature)
is measured by thermal analyzer. |
Table 1 (Continued)
Sample No. |
Sample 1 |
Sample 2 |
Sample 3 |
Sample 4 |
Samp le 5 |
Sample 6 |
Sample 7 |
Sample 8 |
Sample 9 |
Sample 10 |
Sample 11 |
Thicknes s difference e |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3 mm |
<0.3mm |
<0.3mm |
Visible light transmittance |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
About 40-95 % |
Non-transparent |
Non-transparent |
Water absorption |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3 % |
0-0.3% |
0-0.3% |
Melting process temperature (°C) at 100.5 Pa·s |
About 1,580 |
About 1,600 |
About 1,580 |
About 1,590 |
About 1,600 |
About 1,560 |
About 1,640 * |
About 1, 1,620 * |
About 1,560 |
About 1,580 |
About 1,550 |
Melting process temperature (°C) at 102 Pa·s |
About 1,490 |
About 1,510 |
About 1,500 |
About 1,510 |
About 1,520 |
About 1,530 |
About 1,570 |
About 1,560 |
About 1,490 |
About 1,510 |
About 1,480 |
Clarificat ion, bubble discharge process temperature (°C) at 103 Pa·s |
About 1,285 |
About 1,280 |
About 1,290 |
About 1,290 |
About 1,320 |
About 1,300 |
About 1,350 |
About 1,340 |
About 1,300 |
About 1,305 |
About 1,295 |
Forming process temperature (°C) at 103 Pa·s |
About 1,130 |
About 1,120 |
About 1,145 |
About 1,130 |
About 1,180 |
About 1,160 |
About 1,220 |
About 1,200 |
About 1,160 |
About 1,170 |
About 1,140 |
Difference value of expansion coefficient at 150°C-3 00°C (about PPM) |
About 1.6-2. 8 |
About 1.2-2. 5 |
About 1.6-2. 7 |
About 1.6-2. 6 |
About 1.4-2. 7 |
About 1.7-2. 8 |
About 1.6-2. 4 |
About 1.4-2. 8 |
About 1.2-2. 5 |
About 1.4-2.6 |
About 1.6-2.7 |
Difference value of expansion coefficient at 550°C-6 00°C (about PPM) |
About 1.4-2. 5 |
About 1.3-2. 6 |
About 1.8-2. 8 |
About 1.6-2. 5 |
About 1.7-2. 6 |
About 1.8-2. 3 |
About 1.9-2. 2 |
About 1.4-2. 4 |
About 1.5-2. 1 |
About 1.8-2.3 |
About 1.8-2.8 |
Difference value of expansion coefficient at 600°C-6 50°C (about PPM) |
/ |
/ |
/ |
/ |
/ |
/ |
About 1.5-2. 4 |
About 1.7-2. 6 |
About 1.6-2. 8 |
/ |
/ |
*It cannot be measured by calculated but not by high-temperature rotary viscosimeter |
Table 2 (Prior Art)
Sample No. |
Sample I soda-lime glass (It is a float line product in North China. The difference
of all float soda-lime glass compositions is only between 1-2%.) |
Sample II PDP glass (Glass and Enamel 4th Issue, Volume 33, August 2005 and other literatures) |
Sample III LCD boron glass CN101784494A, US2002/0011080A1 and other literatures and embodiments |
Technical solution in "crystallized glass having natural-marble-like surface patterns
and method of producing the same" with a publication number CN1053047A. |
MgO (wt %) |
About 5 |
About 0-4 |
0.5 |
0.5-17 |
CaO (wt %) |
About 6 |
About 3-3.5 |
About 4.5 |
1-20 |
SiO2 (wt %) |
About 74 |
About 54-60 |
About 59 |
45-75 |
Al2O3 (wt %) |
About 1 |
About 6-11 |
About 15 |
1-25 |
Na2O (wt %) |
About 13 |
About 0-6 |
/ |
1-15 |
B2O3 (wt %) |
/ |
/ |
About 10.5 |
0-10 |
BaO (wt %) |
/ |
About 9 |
About 6 |
0.1-18 |
K2O (wt %) |
About 1 |
About 10 |
/ |
/ |
Fe2O3 (wt %) |
About 0.1 |
0 |
0 |
0 |
TiO2(wt %) |
0 |
0 |
0 |
0 |
Melting process |
It cannot be |
It cannot be |
It cannot be measured |
Due to a lot of |
temperature (°C) at 100.5 Pa•s |
measured by high-temperature rotary viscosimeter. |
measured by high-temperature rotary viscosimeter. |
by high-temperature rotary viscosimeter. |
crystals, it cannot be measured by high-temperature rotary viscosimeter. |
Melting process temperature (°C) at 102 Pa•s |
It cannot be measured by high-temperature rotary viscosimeter. |
It cannot be measured by high-temperature rotary viscosimeter. |
It cannot be measured by high-temperature rotary viscosimeter. |
Due to a lot of crystals, it cannot be measured by high-temperature rotary viscosimeter. |
Clarification, bubble discharge process temperature (°C) at 103 Pa•s |
About 1,380-1,400 |
About 1,600-1,650 |
It cannot be measured by high-temperature rotary viscosimeter. |
Due to a lot of crystals, it cannot be measured by high-temperature rotary viscosimeter. |
Forming process temperature (°C) at 103 Pa•s |
About 1,210-1,250 |
About 1,500-1,560 |
About 1,480-1,580 |
Due to a lot of crystals, it cannot be measured by high-temperature rotary viscosimeter. |
Forming process temperature (°C) at 103.7 Pa•s |
About 1,065-1,100 |
About 1,380-1,420 |
About 1,350-1,400 |
Due to a lot of crystals, it cannot be measured by high-temperature rotary viscosimeter. |
Flexural strength (MPa) |
About 45 |
About 55 |
About 50 |
It is lower than 50. Due to a lot of crystals, its strength is poor. |
Difference value of expansion coefficient of glass at 550°C-600°C (about PPM) |
About 20 |
About 15 |
/ |
Due to a lot of crystals, it cannot be measured. |
Difference value of expansion coefficient of glass at 600°C-650°C (about PPM) |
/ |
/ |
About 10 |
Due to a lot of crystals, it cannot be measured. |
Lower limit of annealing temperature (endothermic peak threshold temperature) (°C) |
About 490 |
About 580 |
About 600-650 |
/ |
Thickness difference |
<0.3mm |
<0.3mm |
<0.3mm |
Up to 1.5mm-2mm |
Visible light transmittance |
50-80% |
65%-95% |
65%-95% |
It is lightproof due to being full of crystals and patterns. |
Thickness difference |
Within 0.3% |
Within 0.3% |
Within 0.3% |
It is more than 0.5% due to a lot of bubbles among crystal granules. |
*It cannot be measured by calculated but not by high-temperature rotary viscosimeter. |
[0076] Seen from Table 1:
In the samples of the prior art of the present invention as stated in the embodiment,
the content of B2O3 is 0-3.9%, the content of Fe2O3 is 0.01-5%, the content of TiO2 is 0.0003-4.95%, the content of BaO is 0.01-14%, the content of Na2O is 0.01-8.8% and the content of MgO is 8.1-22.2%. SiO2:CaO is 1.9-4.1 times that of CaO:MgO is 1.2-1.6 times that of MgO; firstly, the viscosity
is better than the melting viscosity in the prior art at 100.5 Pa•s and 101 Pa•s; when the viscosity is 102 Pa•s, bubble discharge, clarification and homogenized viscosity are better than the
prior art for 150°C-400°C. (See and compare Table 2 and Table 3); moreover, its coefficient
of linear thermal expansion is within the differences among 150°C-300°C, 550°C-600°C
and 600°C-650°C; it is better than soda-lime glass, PDP glass and high-boron glass
for alkali-free LCD.
[0077] In the preferential samples 6, 7, 8, 9 and, the content of CaO is 1.3-1.5 times that
of MgO, the content of SiO
2 is 2.1-3.3 times that of CaO, and the content of Al
2O
3 is in a preferential scope of 19-30%; particularly, the technical effect indications
such as the differences of viscosity and coefficient of linear expansion as well as
temperature indicators are the best.
[0078] Samples 1, 2, 3, 4, 5 and 11 are included in the technical solutions of the present
invention.; it can be seen that its viscosity, strength and expansion coefficient
are better than TFT LCD boron glass made with the prior art, PDP plasma display glass
and the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
made with the prior art.
[0079] Samples 1, 2, 3 and 4 are the embodiments in the technical solution of the present
invention, falling into the scope of upper limit, lower limit, crossing upper and
lower limits of the proportions of magnesium, calcium and silicon; samples 1 and 5
are the embodiments the upper and lower limits in which the total content of silicon,
calcium and magnesium is 59.5-99.8%.
[0080] Seen from samples 1-9, the contents of ferrum, barium and titanium are within a certain
scope, the visible light transmittance goes between 40%-95%, and they are applicable
for the use of transparent glass; in samples 10 and 11, the content of ferrum goes
between 1-1.3, and the contents of BaO and TiO
2 are relatively high; therefore, it will become non-transparent brown or claybank
color so as to adapt to the innovation and high-quality wall whose strength, viscosity
temperature and strain points etc, are much better that the flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity made with the prior art; it is particularly
applicable to the use of senior decorative flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity in the non-transparent window wall of external wall
and the furniture.
[0081] Table 2 lists some existing glass formulas and relevant performances; seen from Table
2, the contents of boron, ferrum and sodium of the four samples are different from
the present invention, and the ratios between silicon and calcium, CaO and MgO are
totally different from the present invention; the proportions between SiO
2 and CaO, CaO and MgO are much higher than the present invention; in the present invention,
the content of CaO is 1.2-1.6 times that of MgO and the content of SiO
2 is 1.9-4.1 times that of CaO; the contents between SiO
2 and CaO as well as CaO and MgO in these products are totally different; seen from
Table 2, silicon is always considered technically as the glass skeleton and the matrix
that is melted or difficult to be melted; therefore, its viscosity and melting process
temperature at 10
0.5 Pa·s and 10
1 Pa·s cannot be measured by the standard rotary viscosimeter (because the viscosity
is too high) ; it can be seen that it is relatively or very difficult to overcome
the energy consumption, slag points and stones and improve the production efficiency;
the temperature during normal bubble discharge and homogenization and at 10
2 Pa·s is 150°C-300°C higher than that of the samples in Table 1 for the present invention;
it can be seen that bubble discharge and homogenization are difficult; the process
of the present invention features energy saving and easy control; as for the forming
process temperature at 10
3 Pa·s, the present invention has a comparative advantage of easy technical control
in terms of forming, product evenness and thickness; in product strength, the product
in the present invention is 2-3 times as much as it; in coefficient of linear expansion,
it has great advantages when thin film transistor is sintered on the glass, or when
it comes to the difference changes at several important temperature areas for linear
characteristics of fire and explosion protection and viscoelasticity values.
[0082] Tale 3 is totally different from the compared examples in the technical solution
of the present invention; first, it is a product without containing boron, titanium
and sodium; in particular, the magnesium contents in compared examples 1 and 2 do
not go between 8.1-22.2% in the present invention; the proportion between silicon
and calcium or calcium and magnesium is also higher than that of the samples in the
technical solution of the present invention; compared examples 3, 4, 5 and 6 are the
examples of representative LCD glass
US2002/0011080A1; like all the existing patent literatures of liquid crystal glass and products, their
boron content is more than 5%(The boron contents of samples 1-11 in Table 1 for the
present invention go between 0.01-3.9 %) ; they do not contain ferrum(The ferrum content
of sample 11 in Table 1 for the present invention is 0.01-5 %) they do not contain
titanium; (The ferrum contents of samples 1- 11 in Table 1 for the present invention
go between 0.0001-4.9 %) ; they do not contain sodium (The sodium contents of samples
1- 11 in Table 1 for the present invention go between 0.01- 8.8 %) Silicon is 12-60
times that of calcium; (It is 1.9-4.1 times in the present invention) Calcium is 0.25
times, 1.75 times or infinite times that of magnesium; (It is 1.2-1.6 times in the
present invention.); in technical effect, the melting viscosity temperature, clarification
and bubble discharge viscosity temperature and forming process viscosity temperature
for the six compared examples are higher than 150°C-300°C; it is 2-3 times difference
in terms of the technical effect of flexural strength; (It is mainly attributed to
too little Al
2O
3, or boron is added too much under the same percentage of Al
2O
3) if it is 5-15%, it will make the boron volatilize greatly in a technical manner,
make the compositions uneven, result in loosening of material net structure and greatly
affect the flexural strength; for example, when the content of Al
2O
3 in compared sample 1 is 16-20%; as it contains 8.5% boron, its strength is only 50-60MPa;
when the content of Al
2O
3 in the example of the present invention in Table 1 is about 20% , it can be up to
130-150MPa.
Table 3 (*
indicates that it cannot be measured by high-temperature rotary viscosimeter.)
Sample No. |
Compared example 1 |
Compared example 2 |
Compared example 3 |
Compared example 4 |
Compared example 5 |
Compared example 6 |
SiO2: CaO |
About 1.5 |
About 5 |
About 60 |
About 12 |
About 12 |
About 16 |
CaO: MgO |
About 1.0 |
About 1.8 |
About 0.25 |
Infinite times |
Infinite times |
About 1.75 |
MgO content (wt %) |
28 |
7.2 |
4 |
/ |
/ |
2 |
CaO content (wt%) |
28 |
13 |
1 |
5.4 |
3.5 |
3.5 |
SiO2 (wt %) |
42 |
65 |
60 |
56.3 |
56.2 |
56 |
Total contents of SiO2, CaO and MgO (wt %) |
98 |
85.2 |
65 |
61.7 |
59.7 |
61.5 |
Al2O3 (wt %) |
2 |
14.8 |
16 |
10.7 |
11 |
10.5 |
Na2O (wt %) |
/ |
/ |
8.5 |
8.4 |
8.3 |
15 |
BaO (wt %) |
/ |
/ |
6 |
13 |
13.2 |
5.5 |
Melting process temperature (°C) at 100.5 Pa·s |
* |
* |
* |
* |
* |
* |
Melting process |
About 1,580 |
About 1,520 |
* |
* |
* |
* |
temperature (°C) at 102 Pa•s |
|
|
|
|
|
|
Clarification, bubble discharge process temperature (°C) at 103 Pa•s |
About 1,480 |
About 1,390 |
* |
* |
* |
* |
Forming process temperature (°C) at 103 Pa•s |
About 1,360 |
About 1,340 |
>1,350 |
>1,350 |
>1,350 |
>1,350 |
Water absorption |
Within 0.3% |
Within 0.3% |
Within 0.3% |
Within 0.3% |
Within 0.3% |
Within 0.3% |
Flexural strength |
About 50-60 |
About 50-60 |
About 50-60 |
About 50-60 |
About 50-60 |
About 50-60 |
Thickness difference |
<0.3mm |
<0.3mm |
<0.3mm |
<0.3mm |
<0.3mm |
<0.3mm |
Visible light transmittance |
About 40%-95% |
About 40%-95% |
About 40%-95% |
About 40%-95% |
About 40%-95% |
About 40%-95% |
[0083] It can be learned from the above description that the present invention can make
the temperature under each viscosity reduce when the glass is melted, and thus glass
performance, composition and energy saving can be combined very well; however, the
present invention is not limited to the following examples, but it can be adjusted
and changed according to the requirements based on the present invention.
Example 1
[0084] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 0.01-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,230°C; the flexural strength
of the said flat glass is 50-180Mpa.
Example 2
[0085] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 0.01-19%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,580°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,520°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,310°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,160°C; the flexural strength
of the said flat glass is 50-145Mpa.
Example 3
[0086] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 19-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,550°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,080°C-1,230°C; the flexural strength
of the said flat glass is 130-180Mpa.
Example 4
[0087] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 8-30%, SiO
2 is 2.0-3.6 times that of CaO, CaO is 1.3-1.49 times that of MgO, the content of Na
2O is 0.01-2%, the content of B
2O
3 is 0-1%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-680°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,520°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,450°C-1,580°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,350°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,230°C; the flexural strength
of the said flat glass is 75-180Mpa.
Example 5
[0088] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 19-30%, the content of B
2O
3 is 0-1%, the content of Na
2O is 0.01-2%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,520°C-1,680°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,420°C-1,600°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,270°C-1,360°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,160°C-1,280°C; the flexural strength
of the said flat glass is 120-180Mpa.
Example 6
[0089] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 3.1-39%.
Example 7
[0090] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of TiO
2 is 0.0003-4.9%.
Example 8
[0091] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Na
2O is 0.01-8.8%.
Example 9
[0092] Based on the above first embodiment, the characteristic of the said glass is that
its visible light transmittance goes between 40%-95%; calculated as per weight percentage,
the total content of SiO
2, CaO and MgO in its product is 51-99.8%, and the content of BaO is 0.01-14%.
Example 10
[0093] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 0.01-30%, the content of B
2O
3 is 0-1%, the content of Na
2O is 0.01-2%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,450°C-1,680°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,420°C-1,600°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,210°C-1,360°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,280°C; the flexural strength
of the said flat glass is 50-180Mpa.
Example 11
[0094] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 8-30%, the content of B
2O
3 is 0-1%, the content of Na
2O is 0.01-2%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,500°C-1,640°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,420°C-1,600°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,270°C-1,360°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,070°C-1,280°C; the flexural strength
of the said flat glass is 90-180Mpa.
Example 12
[0095] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of Al
2O
3 is 19-30%, the content of B
2O
3 is 0-1%, the content of Na
2O is 0.01-2%, and the content of F
2O is 0-1%; the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass goes between 610°C-710°C; when the viscosity is 10
0.5 Pa·s, the temperature of the said glass is 1,510°C-1,680°C; when the viscosity is
10
1 Pa·s, the temperature of the said glass is 1,420°C-1,600°C; when the viscosity is
10
2 Pa·s, the temperature of the said glass is 1,270°C-1,360°C; when the viscosity is
10
3 Pa·s, the temperature of the said glass is 1,160°C-1,280°C; the flexural strength
of the said flat glass is 120-180Mpa.
Example 13
[0096] Based on the above first embodiment, calculated as per weight percentage, it is limited
that the content of CaO is 1.3-1.61 times that of MgO, the content of SiO
2 is 2.0-3.6 times that of CaO, and the content of Al
2O is 19-39%.
Example 14
[0097] Based on the above first embodiment, it is limited that
- (1) calculated as per weight percentage, in its product contents: ① MgO is 7-20%,
② the content of CaO is 1.0-1.8 time(s) that of MgO, ③ SiO2 is 2.6-5.6 times that of MgO, ④ SiO2 is 2.2-3.8 times that of CaO, ⑤ Al2O3 is 0.1-30%, ⑥ Na2O is 0-18%, ⑦ BAO is 0-5%;
- (2) the strain point temperature of its product goes between 560°C-720°C;
- (3) the water absorption of its product goes between 0-0.001%;
- (4) calculated as per weight percentage, the total content of MgO, CaO and SiO2 in its product is 51%-100%.
Example 15
[0098] Based on the above first embodiment, it is limited that
- (1) calculated as per weight percentage, in its product contents: ① the content of
CaO is 0.6-2.4 times that of MgO, ② SiO2 is 1.3- 5.8 times that of MgO, ③SiO2 is 1.3- 5.8 times that of CaO, ④Al2O3 is 0.1-30%, ⑤ Na2O is 0-18%, ⑥ BaO is 0-20%;
- (2) wherein, the total content of MgO, CaO and SiO2 in its product is 51%-99.9%;
- (3) the water absorption of its product goes between 0-0.001%.
Example 16
[0099] Based on the above first embodiment, it is limited that the said glass contains SiO
2, MgO and CaO, wherein, calculated as per weight percentage, in the said glass, the
content of SiO
2 is 2.1-6.5 times that of MgO, SiO
2 is 1.8-4.6 times that of CaO; the said glass has the following performances:
the thickness difference of the said flat glass is less than 0.3mm;
the visible light transmittance of the said glass goes between 65%-95%;
the water absorption of the said flat glass is within 3%;
the flexural strength of the said flat glass is up to 50-180Mpa.
Example 17
[0100] According to the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the first embodiment of the present invention, the undulating range of
the waviness of the said glass at 20 mm is 0-0.03mm.
Example 18
[0101] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Li
2O is 0.01-5%.
Example 19
[0102] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of SrO is 0.005-8%.
Example 20
[0103] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of PuO
2 is 0.01-5%.
Example 21
[0104] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of As
2O
2 is 0.01-3%.
Example 22
[0105] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 0.01-0.99%.
Example 23
[0106] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Al
2O
3 is 0.1-5%.
Example 24
[0107] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 1-8%.
Example 25
[0108] Based on the above first embodiment, the limited is calculated according to the weight
percentage; the content of Al
2O
3 is 0.1-19% based on the calculation of weight percentage.
Example 26
[0109] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 0.01-2%.
Example 27
[0110] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 2-8%.
Example 28
[0111] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 2-14%.
Example 29
[0112] Based on the above first embodiment, it is limited that calculated as per weight
percentage, the content of Na
2O is 8-14%.
Example 30
[0113] According to the first embodiment of the present invention, the thickness of the
said glass is 0.3-1.8mm.
Example 31
[0114] According to the first embodiment of the present invention, the thickness of the
said glass is 1.8-5mm.
Example 32
[0115] According to the first embodiment of the present invention, the thickness of the
said glass is 5-20mm.
The second embodiment
[0116] The second embodiment of the present invention has provided a preparation method
for a flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity, characterized
in that:
Step 1: all preset and indispensable compositions in a special scope such as Na2O, Fe2O3, Al2O3, SiO2, CaO, MgO or TiO2 and BaO and raw materials whose special ratios are preset among SiO2, CaO and MgO are configured by the said glass formula as set forth in any of Claims
1 to 5; after being mixed and stirred, they are melted under the melting temperature
for each glass formula to form the liquid glass with preset viscosity, then they are
homogenized and clarified and discharge bubbles to form flowing molten mass;
Step 2: the glass is molded by adopting float process, horizontal drawing process,
Glaverbel process, calendaring process or overflow process.
Modification 1 of the second embodiment
[0117] The methods as set forth in the second embodiment, characterized in that:
The said step 1 includes:
Place the prepared raw materials into the corresponding containers to make them pass
through the conveyor lines of raw materials, after being measured, they are put into
the mixing apparatus according to the proportion, after being stirred and mixed, they
are put into the bulk material pipe or feed bin;
Put the formulated raw materials into molten pool to have them melted under the melting
temperature of each glass formula and form the liquid glass with preset viscosity,
then they are homogenized and clarified and discharge bubbles to form flowing molten
mass;
Float process used in step 2: tin kiln is prepared in advance in this process, after
the process of step 1, the flowing molten mass at the tail of molten pool flows into
the tin kiln for such processes as smoothening, polishing and thinness drawing, then
it is drawn by edge-pulling machine according to the direction specified by the process
and pulled by the dragger, it is pulled out of tin trough, and then it is cooled and
annealed, after being cooled and cut, the said glass is manufactured.
Modification 2 of the second embodiment
[0118] The methods as set forth in the second embodiment, characterized in that:
Calculated as per weight percentage, the content of Al2O3 in the said glass is less than or equal to 30%; when the viscosity is 100.5Pa·s, the temperature of the said glass is 1,480°C-1,640°C; when the viscosity is
101 Pa·s, the temperature of the said glass is 1,410°C-1,600°C; when the viscosity is
102 Pa·s, the temperature of the said glass is 1,180°C-1,340°C; when the viscosity is
103 Pa·s, the temperature of the said glass is 1,040°C-1,220°C; the thickness difference
of the said glass is less than 0.3mm; the visible light transmittance of the said
glass goes between 40%-95%; the water absorption of the said glass goes between 0-
0.3%; the strain point temperature of the said glass goes between 560°C-720°C; the
flexural strength of the said glass is 50-180MPa; the difference of thermal expansion
coefficient of the said glass is 1.0-3.0ppm between 150°C-300°C; the difference of
thermal expansion coefficient of the said glass is 1.0-2.8ppm between 550°C-600°C.
Modification 3 of the second embodiment
[0119] The methods as set forth in the second embodiment, characterized in that:
Calculated as per weight percentage, the content of Al2O3 in the said glass is less than or equal to 0-35%; when the viscosity is 100.5Pa·s, the temperature of the said glass is 1,480°C-1,680°C; when the viscosity is
101 Pa·s, the temperature of the said glass is 1,440°C-1,600°C; when the viscosity is
102 Pa·s, the temperature of the said glass is 1,180°C-1,350°C; when the viscosity is
103 Pa·s, the temperature of the said glass is 1,040°C-1,220°C.
[0120] In view of the above compositions and characteristics of the flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity as set forth in the embodiments of
the present invention, the following describes the methods for manufacturing the flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity as set forth in
the embodiments of the present invention.
The third embodiment
[0121] Fig. 1 a plan diagram of a flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity and preparation process product as set forth in the embodiment of the present
invention; it can be seen from the figure that mark 1 of the figure is a flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity product.
[0122] Fig. 2 is a flow diagram of a float process forming of preparation process of a flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity; it can be seen
from the figure that its forming process flow is to put the preset prepared raw materials
into the feed bin, convey the raw materials in feed bin to the molten pool kiln, melt
them in molten at preset temperature and discharge the bubbles; and then the liquid
molten mass enters the tin trough (gas protecting station for nitrogen and hydrogen
nearby by the tin trough is set to supply the protecting gas to the tin trough); it
is smoothened, drawn and pulled on the tin surface of tin trough to form polishing
and flat semi-finished product belts; the glass products are obtained after the transitional
roller enters the annealing kiln for temperature reduction and cooling; the finished
products can be obtained after being cut and sub-packed as per the preset sizes on
the cutting and sub-packing platform.
[0123] Fig. 3 is a side section diagram of a float process forming state of preparation
process of a flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity;
it can be seen from the figure that mark 2 of the figure is inlet of feed bin, mark
3 of the figure is feed bin, mark 4 of the figure is preset prepared mixing raw material,
mark 5 of the figure is raw materials entering molten pool kiln of molten pool (The
preset prepared mixing raw materials as shown in mark 4 of the figure are conveyed
to the molten pool of the molten pool kiln), mark 12 of the figure is float production
line matrix, mark 6 of the figure is molten pool, mark 7 of the figure means that
the liquid melting raw materials enter diversion trough of tin trough, mark 8 of the
figure is tin trough under float process, mark 9 of the figure is semi-finished product
belts formed in the tin trough enter the transitional roller of annealing kiln, mark
10 of the figure is annealing kiln and mark 11 of the figure is the cutting sub-packing
platform that cuts and packs the formed products.
[0124] A further description on the preparation process and float forming process of a flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity is given, and its
manufacturing process comprises the following steps:
- (1) First, prepare the raw materials; the raw material ratio is calculated according
to the above first embodiment, its modifications and the compositions of a flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity in the example.
- (2) The prepared float processes shown in Fig. 3 include the float production lines
such as raw material bin, molten pool kiln, tin kiln with tin liquid, edge-pulling
machine, dragger, transitional roller, annealing kiln cooling system, cutting and
sub-packing platform etc
- (3) Based on the production flow of float process shown in Fig. 3 and Fig. 2, deliver
the preset and prepared mixing materials shown in mark 4 of the figure prepared in
step (1) into the raw material bin shown in mark 3 of the figure with conveyor belt
from the inlet of feed bin shown in mark 2 of Fig. 3, deliver the prepared mixing
materials prepared in step (1) into the molten pool of molten pool kiln with preset
high-temperature assistance shown in mark 6 of the figure through the mouth of molten
pool kiln shown in mark 5 of the figure; gradually, liquid molten mass with good fluidity
is formed at each melting temperature area corresponding to each glass formula; the
bubbles of liquid raw materials are discharged gradually through high-temperature
area; then, melting mass of mixing raw material with good fluidity is formed to enter
the forming process.
- (4) Based on the production flow of float process shown in Fig. 2 and Fig. 3, make
the melting mass of mixing raw material with good fluidity in step (3) flow into the
tin surface of tin trough (also called tin kiln) shown in mark 8 of the figure for
float production line from the molten pool kiln shown in mark 6 of the figure to the
nip of diversion trough shown in mark 7 of the figure; then, they are smoothened,
drawn by the edge-pulling machine and pulled by the dragger, polished and smoothened
on the tin liquid level; the semi-finished product belt is formed and comes out of
the tin kiln through the transitional roller shown in mark 9 of the figure to be cooled
by the annealing kiln by entering the temperature reduction and cooling system in
roller bed shown in mark 10 of the figure; then, it enters the cutting and sub-packing
platform shown in mark 11 of the figure for cutting and sub-packing to obtain the
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity product which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity as set forth in the above first embodiment,
its modifications and examples shown in Fig. 1.
Modification of the third embodiment
[0125] For the forming process of the glass as set forth in the embodiment of the present
invention, any of the following processes can be adopted except the above float process:
horizontal drawing process, Glaverbel process, calendaring process, overflow process,
re-down-leading process, pressing forming and process forming.
[0126] For horizontal drawing process, the above glass can be manufactured with the flowing
melting mass formed in the melting steps by stretching, forming, annealing, cooling
and cutting with horizontal drawing characteristics.
[0127] For Glaverbel process, the above glass can be manufactured with the flowing melting
mass formed in the melting steps by Glaverbel process through calendaring, forming,
annealing, cooling and cutting.
[0128] For the calendaring process, the above glass can be manufactured with the flowing
melting mass formed in the melting steps by calendaring, forming, annealing, cooling
and cutting
[0129] For overflow process, the above glass can be manufactured with the flowing melting
mass formed in the melting steps by the overflow process through down-leading, forming,
annealing, cooling and cutting.
[0130] For a flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity made above
as set forth in the embodiment of the present invention, one of the important aspects
is that the present invention has the new technical solutions for the compositions
used for fluxing; it can greatly reduce the melting temperature of the glass and thus
makes this kind of glass particularly applicable to float process and overflow process;
in normal float process and overflow process, the present field is always limited
under the glass formula with high silicon content; when it requires high strength
and the addition of Al
2O
3, the raw materials are melted by using every means and the extreme conditions; at
least in the existing float process and overflow process, the glass formula in the
embodiment of the present invention has not been used yet; the following details the
applicable reasons for these three kinds of glass forming in a flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity formula in the embodiment of the present
invention.
[0131] In prior art, float process or overflow process is applicable to the glass with very
high requirements on the plane; when it is used in the display product with 1.1mm-0.7mm
or 0.5mm thickness, the requirements on raw materials are high, and no stones or slag
points are formed due to non-melting; therefore, it has high requirements on melting
viscosity; otherwise, there will be significant defects which result in nonconforming
products; then, it has high requirements on the product homogenization and the viscosity
of bubble discharge; otherwise, the bubbles will not be discharged thoroughly, which
is significantly seen on the glass and thus results in product nonconformity; in particular,
it has high requirements on forming temperature viscosity, because a process of smoothening
and leveling is available when it is float forming; if the viscosity is high, it will
be too thick and the smoothening is slow; it will affect the quality; the thickness
and unevenness of product surface during polishing and stretching processes will be
greatly affected due to great thickness and unevenness during leveling and smoothening
processes; the product surface has the wave block defects; for example, PDP glass
requires secondary polishing of float product, because the viscosity of the glass
is too high during forming and smoothening processes.
[0132] Therefore, the present invention overcomes the technical solution with conventional
and technical prejudice; in float process, overflow process, calendaring process,
Glaverbel process and horizontal drawing process, it has significant and essential
technical progress in the viscosity for the three most important processes-melting,
homogenization of bubble discharge, leveling and smoothening, especially the viscosity
of polishing and stretching processes in float process.
[0133] To sum up, the glass in the present invention can reflect its superior technical
solution especially in the production processes of all kinds of flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity, and has overcome the technical prejudices
in these fields.
Applications
[0134] Since the above flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
as set forth in the embodiment of the present invention can break through the aforesaid
three kinds of conventionally technical prejudices, it can be applied in (1) door,
window and wall glass for buildings, (2) glass for automobile and ship, (3) glass
for high-speed rail, (4) LCD glass, (5) PDP glass, (6) TFT glass and high-strength
panel glass for smartphone and iPad and, (7) craft glass and reprocessed tempering
product, (S) LCD and, (9) photovoltaic solar device.
The fourth embodiment
[0135] The fourth embodiment of the present invention has disclosed a LCD which includes:
an array substrate which includes a base and a pixel structure of the said base that
is a glass plate manufactured with the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity as set forth in the first embodiment, its modification and examples;
the said base is a glass plate manufactured with the flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity as set forth in any of Claims 1-5; A color
filter substrate which includes a base and a color filter layer of the said base that
is a glass plate manufactured with the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity as set forth in any of Claims 1-5, a liquid crystal layer that is
clamped between the said array substrate and the said base of color filter layer and
backlight system.
The fifth embodiment
[0136] Since the glass in the present invention can reduce the viscosity, it can be formed
as thinner glass; if such thinned glass is used in the substrate or outer cover plate,
it can improve the visible light transmittance and strengthen the absorption efficiency
of solar battery; therefore, the present invention provides a photovoltaic solar device
that includes solar battery, glass substrate or outer cover plate manufactured with
the flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity in the
present invention.
The sixth embodiment
[0137] The sixth embodiment of the present invention has disclosed a flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity of the present invention based on the
above first embodiment; the surface of the said flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity is attached with a layer of polycrystalline silicon
sintered by and transferred from noncrystalline silicon.
The seventh embodiment
[0138] The seventh embodiment of the present invention has disclosed a flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity of the present invention based on the
above first embodiment; the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity contains a resin bed with quartz, Al
2O
3 or mullite crystal.
[0139] A flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity of the
present invention has novel technical solutions in the field of flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity : the said glass contains SiO
2, CaO, MgO, Al
2O
3, Fe
2O
3 and Na
2O; calculated as per weight percentage, the B
2O
3 content of the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity is 0-3.9%, Na
2O 0.01-14%, Fe
2O
3 0.01-5%, 0-2.81% F
2O, MgO 8.1-22.2% and Al
2O
3 0.01-39%, wherein the content of SiO
2 is 1.9-4.1 times that of CaO, and the content of CaO is 1.2-1.6 times that of MgO;
the lower limit of annealing temperature (endothermic peak threshold temperature)
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 550°C-710°C; the thickness difference of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is less than 0.3mm; the water absorption
of the said flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
goes between 0- 0.3%; the flexural strength of the said flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is up to 50-180Mpa.
[0140] The technical solutions of the present invention have the following characteristics:
First, for all flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the prior art, it is an invention for selection such compositions as aluminum,
silicon, calcium, magnesium, ferrum and sodium as well as the compositions among silicon,
calcium and magnesium; it is an invention about the changes of ratios among these
technical elements; in the selection of changes over the ratios among the elements
of the present invention, its technical solution is as follows: Silicon is 2.0-4.1
or 2.0-3.6 times that of calcium, and calcium 1.2-1.6 or 1.3-1.49 times that of magnesium;
all the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the prior art at least has two end values for the ratio between the two elements
mentioned above; beyond the scope of the present invention, that is the selection
of the ratios of the above elements of the present invention is in the scope of the
prior art, featuring novelty; in the application of flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity, the following new product properties have
been found, and the following unexpected technical effects are generated.
Second, the present invention has disclosed an invention type for the new application
of the product transferred from its new properties; it also generates the unexpected
effect in the invention(That is, though the processing methods of all kinds of flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity and in the new
applications of flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity,
it can generate the new properties of the flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity such as coefficient of linear thermal expansion: [1]
excellent and new viscosity temperature and products at different process stages,
[2] thickness difference, [3] water absorption, [4] flexural strength, [5] visible
light transmittance, [6] waviness, [7] lower limit of annealing temperature (endothermic
peak threshold temperature), [8] new properties and new applications of flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity such as coefficient of linear
thermal expansion).
[0141] In the new applications, the present invention has found the viscosity temperature
at melting, homogenization, bubble discharge and clarification process stages, especially
the control for waviness evenness, thickness difference and viscosity temperature
in stretching process (or the polishing in the float process) at forming process stage,
which are never disclosed in the products in the prior art.
- (A) One of the discoveries of new product properties: It has overcome the element
omission of Na2O of flat soda glass caused by the conventional technical prejudice; the flat soda
glass in the prior art contains about 13% sodium which is mainly used for fluxing,
especially the fluxing for silicon to control the viscosity at each process stage;
however, the technical solutions and new product properties found in the present invention
have broken through this technical prejudice; it can be invented according to the
change relations among silicon, calcium and magnesium; in the application of flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity, the new product
properties is 150°C-250°C lower than the viscosity temperature at several process
stages for high-sodium flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the prior art when the sodium content is 0-1%; this will produce the
thickness difference and waviness that can save energy and control the high-quality
product; it can overcome such defects as stones and slag points caused by poor melting
process as well as bubble ratio caused by poor bubble discharge; especially for the
ultrathin flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
with LCD of 0.5-1.1mm, it can reduce the slag points, stone ratio, bubble ratio, the
ratio of nonconforming thickness difference and the ratio of nonconforming waviness;
it can thus form a technical control platform with a larger scope.
In the operation of the prior art and in case of any defects at each process stage,
the temperature will be increased for each process stage in operation so as to remove
such defects; however, the top of molten pool will be easily collapsed, which greatly
shortens its service life; the present invention provides an adjustable scope for
the viscosity which is technically controllable in the control process, which has
fundamentally solved the technical difficulties that the insiders think that the existing
sodium (high-sodium) flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity is suffering "short-nature material" (namely "short-nature glass).
- (B) One of the discoveries of new product properties: In the present invention, 13%
sodium in flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
containing 99% calcium and sodium is changed as 0.01-1%, 0.01-0.1% or scarcely any
sodium, which is omitted in the invention; it is found that the technical solutions
for the ratio of silicon, calcium and magnesium in the present invention have overcome
such a technical prejudice that the annealing temperature can be increased only by
adding aluminum or boron in the prior art; it produces the new product properties
that the lower limit of annealing temperature can be about 100°C lower when it contains
low aluminum and boron (only 1% below); when it contains low sodium (or less than
1 %), the annealing temperature will increase and more product properties will appear
(see samples); the lower limit of annealing temperature (endothermic peak threshold
temperature) of the said flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity goes between 610°C-710°C; it is preferred to be 610°C-650°C, or add the
content of Al2O3; more preferential product properties with 650°C-710°C are brought about; it is found
that the lower limit of annealing temperature (endothermic peak threshold temperature)
will be lower as the sodium content increases; now, the lower limit of annealing temperature
(endothermic peak threshold temperature) of more than 99% flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity for building containing 13% sodium
is only 490°C; the lower limit of annealing temperature (endothermic peak threshold
temperature) of flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
without sodium (or only 0.01-1 %) and boron in the present invention goes between
610°C-710°C; the lowest content of magnesium in the flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity (the content of aluminum is within 1%) under
the technical solution of the present invention is 8.1% (normally more than 12%),
and calcium is at least 1.2 times that of magnesium, namely 9.6% (normally more than
15%); this is the major reason for radical increase of the lower limit of annealing
temperature (endothermic peak threshold temperature); it is 120°C-200°C higher than
the common soda-lime flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity; this is another discovery for new product property.
It should be noted here that the lower limit of annealing temperature (endothermic
peak threshold temperature) of the glass can be radically increased without boron
by adding the contents of calcium and magnesium to be 19-50% (normally only containing
10-12% calcium and magnesium) which is higher than the soda-lime glass in the prior
art, and the content of Na2O is also increased radically to be 2-13% which is only slightly lower than the lower
limit of annealing temperature (endothermic peak threshold temperature) of the product
without sodium or low sodium; however, it does not mean that the purpose of production
can be achieved by adding more calcium and magnesium, because it must have the process
conditions that are suitable for flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity, especially lower viscosity temperature of bubble discharge; if the flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity in the prior art
is added with more calcium and magnesium contents rather than the ratio of silicon,
calcium and magnesium in the present invention; even though the content of calcium
and magnesium is added in the prior art, its viscosity temperature is still 150°C-300°C
higher than the present invention; for example, the alkali-free boron flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity is added with 8-15% boron as a fluxing
agent and only 8-10% Al2O3 at 102 Pa·s, the temperature for bubble discharge is more than 1,500; an expensive platinum
bubble discharge channel of shallow molten pool (the depth of liquid glass: only 5-10cm)
must be used to complete the procedures for bubble discharge; moreover, the daily
output is only several tons; therefore, its output is several hundred times less than
the technical solutions of the present invention that the viscosity is low, the lower
limit of annealing temperature (endothermic peak threshold temperature) is high, and
it can produce several hundred tons per day (the depth of molten pool in bubble discharge
area: 70-100cm); what's more, its investment is several times than the present invention;
that is to say, to overcome the increase of lower limit of annealing temperature (endothermic
peak threshold temperature) to make it meet the requirements of all LCD flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity, glazed, fireproof and explosion-proof
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity; the flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity in the prior art adopts
the technical solution by adding 20-50% calcium and magnesium rather than adopting
the technical solution of the present invention related to changes over the ratio
of all elements and the selection of the present invention; it is not the unexpected
combined technical effects which can make the cost and the lower limit of annealing
temperature (endothermic peak threshold temperature) compatible each other.
Its unexpected technical effects do not lie in the lower limit of annealing temperature
(endothermic peak threshold temperature) of the product of the present invention containing
no sodium and boron or containing low aluminum as well as the coefficient of linear
expansion at 150°C-300°C,610°C-650°C or 680°C; it can fully produce high-quality,
low cost and dozens of times of production efficiency, meet the technical requirements
of producing TFT liquid crystal glass and form better economic cost goal; it can also
be used in the substrate of common PDP display, reach such a goal that the lower limit
of annealing temperature (endothermic peak threshold temperature) is higher than 580°C
to make the deformation in the sintering process at about 580°C suffer small change;
moreover, if more Al2O3 is added, the temperature will be higher and reach the standard that the lower limit
of annealing temperature (endothermic peak threshold temperature) of liquid crystal
glass is higher than 650°C-710°C to the deformation of glass substrate when the transistor
film is sintered at about 600°C-650°C and reach within 3 PPM.; this is greatly better
than the existing PDP substrate glass and alkali-free boron glass; moreover, the existing
middle-end LCD can improve the technical levels, which is good for the upgrade of
LCD and greatly improves the pixel precision of resolution(All LCD glass in the prior
art adopts the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
with 13% sodium at only 490°C for the lower limit of annealing temperature (endothermic
peak threshold temperature)) ; another technical effect is that the viscosity temperature
is lower than 200°C for existing soda glassit can make LCD, PDP ad TFT glass develop
to be as thin as 0.1-0.3mm and feature high standard thickness difference and waviness,
which takes the lead in the industry.
- (C) One of the discoveries of new product properties: It has overcome the conventional
technical prejudice; it produces an invention of omitting a technical element related
to "B2O3" of an alkali-free boron glass of the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity; the existing alkali-free boron flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity especially used for LCD cannot contain more than 1%
sodium. (Na2O will gradually erode the extremely fine circuits attached on the transistor film
of the glass) ; therefore, 8-15% boron is used as a fluxing agent; a technical prejudice
exists among some believing in this way; in particular, its fluxing for silicon can
achieve the reduction of viscosity temperature of the high-quality flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity at each process stage; however, the
technical solution and the new properties found in the present invention have broken
through such technical prejudice; due to the change over the ratio of silicon, calcium
and magnesium and in the application of flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity, the new product properties can be 250°C-350°C lower than the viscosity
temperature of the product with 8-15% boron in the prior art at several process stages
of the flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity when there
is no B2O3 (0-1%); this will form a new technical platform for controlling product quality by
control process in a bigger scope; for the glass used for LCD, it has high quality
requirements such as high-level thickness difference, waviness standard, almost no
bubbles, slag points or stones, the finished product rate and excellent product rate
related to ultrathin products with 0.5-0.7mm thickness; for viscosity at bubble discharge,
clarification and homogenization process stages and forming and stretching process
stages; it has provided a process control scope and a process control platform which
is much better than the prior art.
- (D) One of the discoveries of new product properties: It has overcome a technical
prejudice that the viscosity temperature of the conventional flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity will be naturally increased radically
by adding Al2O3; for example, the existing soda-lime glass can only be added with about 1 % Al2O3 while the existing alkali-free boron flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity can also be added with about 8% Al2O3 to improve strain points; if it is added too much, it will make the viscosity temperature
which have been very high at each process stage much higher and fail to achieve the
quality goal by controlling the process; some believe that the product strength can
be improved by adding 25-30% Al2O3 when the controllable process cannot reduce the cost; however, the technical solutions
and the new product properties of the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity found the present invention have broken through such a technical
prejudice; when the present invention does not contain boron, sodium and fluorine
(0-1%), and the content of Al2O3 is about 3.1%, 16%, 20% or 25% which is a great change, the prior art holds that
the viscosity will be increased radically, but the change of the viscosity temperature
in the present invention only goes between 20°C-40°C; when the content of Al2O3 changes between 1-30%, the viscosity temperature only increases about 40°C-80°C(See
11 samples of Table 1 and the sample contrast of Table 2).
Moreover, the viscosity temperature is 100°C-200°C lower than the flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity whose Na2O is 13% or B2O3 is 8-15%; this proves that the technical solutions for the change over the ratio
of silicon, calcium and magnesium in the technical solutions of the present invention
can produce a new product property when the content of Al2O3 is 25% or 30%; this is a new property for eutectic composition consisting of aluminum,
silicon, magnesium and calcium and containing a high content of Al2O3; it can produce the unexpected effects in high aluminum content but low viscosity
temperature, and then an unexpected technical effect in high-quality and high strength
can be produced. In the present invention, the content of Al2O3 can be up to 19-28%, and the strength can be about 140-160MPa or180MPa which is much
higher that 2-3 times of strength of the flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity made with the prior art; the viscosity temperature
is 150°C-250°Clower than that with the prior art when the content of Al2O3 is only 1-25%; therefore, if the viscosity of alkali-free high-boron glass is formed
by the technical solution of the present invention, then there will be much room for
melting viscosity and strength when the content of Al2O3 is raised to be 29-39%, (The flexural strength of the glass in the embodiment f the
present specification and invention is cut into pieces with a dimension of 50mm×50mm×5mm
and measured in accordance with GB/T3810.4-2006.) B2O3 in the alkali-free high-boron glass made with the prior art volatilizes, which will
result in uneven compositions, damage the net structure related to Al2O3 and thus greatly impact the due strength; this is the important reason why the strength
of the alkali-free high-boron glass is relatively poor even though it contains 7-15%
Al2O3.
Therefore, when there are high aluminum content and no boron content, the present
invention can produce a flexural strength with 90-145MPa or 145-180MPa because it
has the new property of eutectoid consisting of silicon, calcium and magnesium with
high aluminum content; it also features energy saving, lower cost and large process
scope for viscosity temperature; it can control melting at viscosity temperature stage
of melting process, overcome the stones, prevent the slag points that are not melted
and control the thickness difference and waviness of the flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity during clarification and forming control(As
the viscosity is lower, the flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity product at this process stage will be softer and have a controllable scope;
in contrast, the viscosity is higher, the flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity product at this process stage will be harder, and
then the thickness difference and waviness will not be easily controlled at such process
stages as pulling, horizontal drawing, calendaring, leveling in float process, stretching
and polishing etc).
- (E) To add 0.01-4% Fe2O3 is a combined invention and can form the new function, save the quality resources
and greatly reduce the cost.
[0142] Third, since the revealing and discovery of the above new product properties have
overcome many of the above prior art prejudices, it produces several unexpected effects
as below in terms of flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity used for building, TFT display, industry, decoration and waterproofing:
(1) technical effects in melting quality, bubble quality, smoothness, thickness difference
and waviness quality related to the improvement and control process due to the property
of viscosity temperature; (2) unexpected energy saving effect with over 200°C due
to the reduction of viscosity temperature; (3) unexpected technical effect in producing
2-3 times increase of strength due to massive addition of aluminum to the property
of eutectoid (from 1% to 25% or above); (4) unexpected technical effect in producing
2-3 times thinner flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
which is 2-3 times energy, resource and warehousing saving due to the increase of
strength; (5) The new technical effect of the present invention lies in that it can
save the increasingly reduced UD glass raw material resources due to the addition
of Fe
2O
3 to the non-transparent or low transparent decorative flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity; the cost of main raw material of glass
is reduced by 10 times; the conventional technology holds that the raw material with
relatively high ferrum content makes the glass produce the blue-green defects, but
the present invention can make the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity increase its strength by 2-3 times; therefore, it can be thinned
by 2-3 times; light transmittance will be increased while the blue-green level is
not significant; it does not affect the use of glass; therefore, this combined discovery
can produce a flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
with comprehensive effect in generating unexpectedly light, thin, high-strength, saving
hi-end glass resource and raw material cost; this is a technical effect that other
prior art fail to achieve in generation high strength, light weight, thinness, raw
material resource saving, and saving the raw material cost by 10 times; (6) Since
an invention with a technical element omitted is adopted, it omitted boron to ensure
better property for flat process at melting, bubble discharge, forming and stretching
stages and generate the property of flexural strength by adding more Al
2O
3 under the premises that it can better control the quality than the prior art in stones,
slag points, bubble rate, smoothness and thickness difference of alkali-free boron
glass in the prior art; moreover, the product quality with high-quality bubble rate,
smoothness, thickness difference and waviness can be guaranteed without unexpectedly
adding 8-15% boron to flat display; it can solve the technical prejudice that TFT
display glass production installation can only adopt overflow process and platinum
channel process in the prior art; it can even adopt the float process.; under the
premise that thickness, smoothness and waviness are guaranteed, it can produce an
unexpected effect in improving the production efficiency by 20-40 times, saving investment
by 30-50 times and saving the land and plant by 20 times; compared with the prior
art for flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity,
the technical solutions of the present invention has the new, unrevealed and undisclosed
properties which are not predicted, forecasted and reasoned in advance; it can overcome
the conventionally technical prejudice in flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity technology and solve the above major issues concerned
by people in industry; the technical effect generates the changes over "quality" and
"quantity"; it proves that the technical solutions are not obvious but outstanding,
having the technical progress and innovativeness.
The above is a description on the compositions, properties, manufacturing process,
applications and technical effects for the glass of the present invention by specific
embodiments; the following is a summary for the characteristics of a flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity in the embodiment of the present invention;
that is, the basic differences between the present invention and the prior art:
The first difference between the present invention and the prior art:
[0143] Compared with the existing alkali-free high-boron glass in TFT LCD, there are several
hundred patents, other literatures and several thousand embodiments in the world;
its representative patent with publication number
US2002/0011080A1 titled alkali-free glass of LCD; the biggest differences between its technical solutions
and the present invention firstly lie in that: (1) In its technical solutions, SiO
2 is 40-70%, CaO is 0-15%, MgO is 0-10% and B
2O
3 is 5-20%; it is an invention selection in the ratio of silicon, calcium and magnesium;
in the present invention, calcium is 1.2-1.6 times that of magnesium; in the upper
limit of the prior art, calcium is 0-10 times that of magnesium; that is, it is less
than 0.1 times; its lower limit is 15:0; that is, it is more than 15 times; therefore,
the present invention preferentially selects a value in its scope, showing its novelty;
moreover, in the prior art, the content of B
2O
3 is 5-20%, containing no Na
2O and Fe
2O
3; in the technical solutions of the present invention, the content of B
2O
3 is 0-3.9%, Fe
2O
3 0.01-5%, and Na
2O 0.01-8.8%; due to its different technical solutions, the change invention in the
ratio of silicon, calcium and magnesium in the present invention generates the new
product properties; comparatively in viscosity, all alkali-free boron glass in this
type is 200°C-400°C higher than the viscosity temperature for clarification, homogenization
and bubble discharge without adding boron but with adding 10-30% Al
2O
3 at 10
0.5 Pa•s, 10
1 Pa•s and 10
2 Pa•s and the viscosity temperature for forming, stretching and polishing at 10
3 Pa•s; the insiders obviously know that the low viscosity temperature of the present
invention is very good for the control of slag points and stones at the melting process
stage of flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity,
is easy for sufficient melting and good for the control of bubble rate at bubble discharge
and clarification process stages(However, all the existing alkali-free boron glass
adopts the bubble discharge process for platinum channel installation which has high-temperature
viscosity and high cost; the low viscosity of the present invention is surely good
for the forming of flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity,
especially the quality control of smoothness, thickness difference and waviness of
ultrathin formed TFT glass; (2) All the existing TFT LCD alkali-free boron glass is
produced with overflow process, Since it will seriously erode the molten pool, several
hundred production lines in the world must conduct cold repair once every year (about
three months); such cold repair will cost 100 million yuan or above each time; in
the present invention, no boron can be used, so it can overcome this major difficulty;
(3) in the present invention, the production can be continued for 8-10 years without
cold repair; three month each year for no cold repair are available, which helps improve
the production output; (4) in the prior art, the content of boron is 5-20%; there
will be a lot of boron to volatilize, which produces uneven compositions and harms
the smoothness of glass forming; in the present invention, there is no boron, and
the product smoothness is very good; (5) currently, the overflow process can only
adopt the equipment with an output of 6-10 tons/day; moreover, the cost will be up
to 1 billion yuan or above; the use of high-content B
2O
3 will seriously erode the molten pool; in theory and practice, it is impossible at
all to use float molten pool with big tonnage for production; in the technical solutions
of the present invention, boron is not used, so the production is allowed in float
molten pool with 150 tons/day or 200 tons/day; it can improve the production output
by 20-30 times, and its investment cost is only 1/40 or 1/60 compared with the same
production output; this can greatly save the investment and cost of depreciation (one
production line is only 300-500 million yuan) ; it can save the industrial land by
more than 10 times; (6) since LCD glass can be produced without boron, it can fully
solve the problem of poison gas discharge from boron during the production of boron
glass; (if the content of boron in the product is 10%, then about 20% poison gas from
boron will be discharged and volatilize by adding about 30% boron to the raw materials;
if it is 10tons/day by overflow process in the prior art, there will be 2 tons poison
gas from boron to be discharged; there will be 20 tons poison gas from boron to be
discharged if the production output is 200 tons/day; in the technical solutions of
the present invention, the float line with 200 tons/day will not discharge any poison
gas from boron; (7) Since 5-20% boron (most of the liquid crystal boron glass in the
embodiment is 8-15%) will volatilize greatly, which results in uneven compositions.
When containing the same Al
2O
3 content, the strength of all high-boron LCD glass will reduce by more than 80% while
the present invention does not have boron or have very low-content boron; therefore,
it has the high strength; though the claims state in the prior art, "....CaO is 0-15%,
MgO is 0-10%, SiO
2 is 40-70%", SiO
2 is about 60% in dozens of embodiments, CaO in most embodiments is less than 1-4%:
Only two embodiments are 5.5%, one for 6.2%; they are not in the scope that SiO
2 is 1.9-4.1 times that of CaO but in the scope of 10-60 times; MgO in most embodiments
is less than 4-5%, which is not in the scope that MgO in the present invention is
8.1-22.2%; according to the convention of "separate comparison principle", this inventor
gains the above conclusion by comparing several hundred display patents or claims
and embodiments of the literatures at home and aboard; therefore, the present invention
is novel; the claims, specification and embodiments in the prior art do not reveal
the invention content related to the ratio of silicon, calcium and magnesium, the
structural property of new fluxing and eutectic melting compositions and the technical
effects in excellent viscosity, lower limit of annealing temperature (endothermic
peak threshold temperature), strength, energy saving, low cost and easy control etc,
Especially in viscosity, it has a technical effect that its viscosity temperature
is 300°C lower than all existing LCD glass. In strength, it has a better technical
effect by 1-2 time (s); it generates the technical effects unexpected by the insiders;
it proves that the above technical effects of the present invention are not obvious
but innovative.
[0144] Any of the above technical effects has not yet been revealed or publicized during
the production of all existing LCD boron glass, which is not obvious; any of the technical
effects reflects the innovativeness of the present invention.
[0145] The second difference between the present invention and the prior art: The prior
art
SU581097A1 has disclosed an opacified glass in which SiO
2 is 50-63%, CaO is 22-33%, MgO is 13-21%, Al
2O
3 is 1-3% and Na
2O is 0.5-2%; calcium is 1.4-1.5 times that of magnesium; totally different from the
technical field and applications of the flat glass which features high annealing point,
environmental protection, energy saving, emission reduction, high strength, high evenness
and low viscosity, it is only a technology of producing opacified glass; its major
difference from the present invention lies in that the present invention is a flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity which is manufactured
different processes of various flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity and shows different characteristics; for example, the thickness difference
is ±0.3mm, waviness is within 20mm, the undulating range is 0-0.03mm, and flexural
strength is 50-180MPa, preferentially 0-180MPa or 145-180MPa; moreover, the present
invention contains Fe
2O
3. Na
2O is 2.1-14%; it controls and clarifies the technical process indicators such as viscosity
temperature, strength and annealing temperature at each process stage for flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity when Al
2O
3 is 0.01-30%, 3.8-30%, 19-30% or 26-39%; moreover, the present invention is a totally
different one based on the application of flat glass which features high annealing
point, environmental protection, energy saving, emission reduction, high strength,
high evenness and low viscosity, and the processes it adopts is totally different
from the processes of a flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity under this technology such as float process, horizontal drawing process,
Glaverbel process, calendaring process or overflow process; it adopts the newly discovered
technical effects in high smoothness, high-level thickness difference, waviness and
high flexural strength at the process stages of the flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity; the invention purpose of the above prior
art is to manufacture a colored, opacified and non-transparent glass product; it does
not fully reveal the new product properties such as viscosity, strength, smoothness,
thickness difference and waviness etc; it does not reveal any unexpected technical
effects of the present invention; the present invention is a new invention type in
patent inventions which is a flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity with new properties and different applications in building, industry, display
and so on and can product unexpected technical effects; it is also a combination between
the new product properties that have never been revealed and the existing process
and of the prior art for flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity, which produces unexpected technical effects; for example: Since one of
the new product property discoveries has overcome the element omission of Na
2O of flat soda glass caused by the conventional technical prejudice; the flat soda
glass in the prior art contains about 13% sodium which is mainly used for fluxing,
especially the fluxing for silicon to control the viscosity at each process stage;
however, the technical solutions and new product properties found in the present invention
have broken through this technical prejudice; it can be invented according to the
change relations among silicon, calcium and magnesium; in the application of flat
glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity, the new product
properties is 150°C-250°C lower than the viscosity temperature at several process
stages for high-sodium flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity in the prior art when the sodium content is 0-1%; this will produce the
thickness difference and waviness that can save energy and control the high-quality
product; it can overcome such defects as stones and slag points caused by poor melting
process as well as bubble ratio caused by poor bubble discharge; especially for the
ultrathin flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
with LCD of 0.5-1.1mm, it can reduce the slag points, stone ratio, bubble ratio, the
ratio of nonconforming thickness difference and the ratio of nonconforming waviness.
[0146] In addition, since the revealing and discovery of the above new product properties
have overcome many of the above prior art prejudices, it produces several unexpected
effects as below in terms of flat glass which features high annealing point, environmental
protection, energy saving, emission reduction, high strength, high evenness and low
viscosity used for building, TFT display, industry, decoration and waterproofing:
(1) technical effects in melting quality, bubble quality, smoothness, thickness difference
and waviness quality related to the improvement and control process due to the property
of viscosity temperature; (2) unexpected energy saving effect with over 200°C due
to the reduction of viscosity temperature; (3) unexpected technical effect in producing
2-3 times increase of strength due to massive addition of aluminum to the property
of eutectoid (from 1% to 25% or above); (4) unexpected technical effect in producing
2-3 times thinner flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
which is 2-3 times energy, resource and warehousing saving due to the increase of
strength.
[0147] The third difference between the present invention and the prior art: the literature
"crystallized glass having natural-marble-like surface patterns and its method of
producing the same" with a publication number
CN1053047A in the prior art has limited the extensive value ranges of all contents in the claims.
However,
CN1053047A is a crystallized glass having natural-marble-like surface patterns, which is totally
different from the structural features of the flat glass of the present invention.
The technical problem to be solved by
CN1053047A is that the patterns can be obtained by the separation of crystal of some compositions
in the glass, and its process rather than the product compositions has determined
its inevitable product defects.
- (1) In technical solution, the present invention contains Na2O 0.01-8.8%, Fe2O3 0.01-5% and TiO2 0.0003-4.9%, while this prior art does not contain the aforesaid compositions, and
its embodiment does not list the ratio of silicon, calcium and magnesium in the present
invention.
- (2) Its process is stated as: collect the small frit in molding case, halve ... crystal
entered from the glass surface into the internal part, the frits are melted and mixed,
control the frit size..., obtain the appearances of marble and granite patterns. In
this document, a lot of statements are about crystallization process, so it can be
seen that it adopts a neoceramic glass process with color patterns for granule viscous-melt
crystallization.
It only melts and bonds the glass granules (all crystallized glass processes are within
1,200°C only), there is no required technical process for the flat glass whose temperature
is reduced from 1,600 °C to 1,200 °C during melting, liquefying, clarifying, bubble
discharging and forming, and it is impossible to relate to the revealing of viscosity
characteristic. Moreover, its patent documents do not have any records about viscosity;
after the viscosity material characteristic is generated on the basis of float process,
overflow process, Glaverbel process, calendaring process or horizontal drawing process,
the viscosity characteristic of the present invention is the product strength characteristic
that is thereby revealed and generated (the process in the prior art of the following
mentioned comparison documents does not have good strength); its water absorption
characteristic is generated (the process in the prior art of comparison documents
has high water absorption); its thickness difference characteristic is generated (the
process in the prior art of comparison documents is the granule melting process of
neoceramic glass in the mold, so good thickness difference is not available at all);
good visible light transmittance is generated (it is impossible to be transparent
according to the process in the prior art of comparison documents). Therefore, many
product characteristics in the technical solution of the present invention are the
product characteristics which are generated to be totally different from the processes
in the prior art of comparison documents but not determined by the compositions, and
they are of novelty.
- (3) In the technical solution of the patent document for prior art and in its process,
it is made with different granular materials to have its glass material softened,
deformed and melted each other...meanwhile, the separated glass crystal conforms to
the size and shape of small frits (see P7). The insiders all know that the uppermost
defect the product is loose when granules are distributed, so the sintered product
has a lot of uneven parts on its surface; like all neoceramic glass, this kind of
granules are growing, various granule shapes make the surface unevenness remain between
0.5mm-1.5mm; moreover, in this frame forming process, the product surface is rather
uneven, the frame is sintered with refractory material, the unevenness of its surface
and quadrangles is more and more significant as it is sintered and deformed each time,
so the thickness difference of its finished product goes between 1.5mm-2mm, both sides
of all the products need to be slicked and polished with the thickness of at least
1mm-2mm; even if they are slicked and polished, the thickness difference of its product
is more than 1mm as well, so it suffers great defect and waste. This is a far difference
from the thickness difference within 0.3mm for the glass of the present invention
and normal flat glass. This defect is completely caused by its process rather than
material compositions. The present invention has overcome these defects, so the thickness
difference characteristic of the present invention is of novelty when compared with
the prior art hereof.
[0148] The fourth difference between the present invention and the prior art: compared with
the actual production technologies (see Table 2) for soda-lime float glass in the
prior art and all patents or all kinds of literatures, there are 4-6 differences between
the technical solutions in the claims for all float soda-lime glass and plasma glass
and the overall technical solutions of the present invention, so the present invention
is of novelty.
The fifth difference between the present invention and the prior art:
[0149] In the scope of compositions such as silicon, calcium and magnesium in some of the
technical solutions of the present invention and the technical solution of the invention
type in the selection scope for the ratio changes among silicon, calcium and magnesium,
in the existing flat glass embodiments, this inventor has reviewed hundreds of literatures
and finds that there is no such a ratio that the content of MgO is 8.1-22.2%, SiO
2 is 1.9-4.1times that of CaO, CaO is 1.2-1.6 times that of MgO, and they do not contain
Fe
2O
3 and TiO
2.
[0150] The sixth difference between the present invention and the prior art: the present
invention provides a LCD, which includes: an array substrate, which includes a base
and a pixel structure on the said base, the said base is a glass plate manufactured
with the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
as set forth in any of Claims 1 to 5; a color filter substrate, which includes a base
and a color filter layer on the said base, the said base is a glass plate manufactured
with the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
as set forth in any of the embodiments of the present invention; a liquid crystal
layer, which is clamped between the said array substrate and the said base of color
filter layer; and a backlight system. The major differences between LCD and the existing
LCD are as follows: firstly, since the new characteristics of the new property for
eutectic composition consisting of silicon, calcium and magnesium and containing a
high content of aluminum are adopted in the present invention, the glass substrate
which is produced by adding with 25-30% Al
2O
3 at low cost can have 1-2 time (s) as good as the strength performance of TFT alkali-free
boron glass or is even better than that. In the manufacturing and design, it can be
1-2 time(s) thinner under the same strength, which will greatly reduces its weight,
can be applicable to mobile phone, tablet PC and laptop etc. with a high demand in
light weight and thinness; moreover, it will be more transparent and the image will
be clearer since the glass substrate is lightweight and thin. In the design with the
same thickness, it will make the glass strength increase by 1-2 time(s), and it is
quite important that it can greatly reduce the damage rate during transport, installation
and use and ensures the use effect in the safety and damage resistance for the smart
phone or tablet PC which are often moved. Secondly, since the float process can be
adopted for the production efficiency of the substrate glass in the present invention,
its production efficiency will be 30-40 times as high as that of overflow process
for the existing LCD glass, it will save more than 40 times of investment, so the
cost will be reduced, which is of great significance to the cost reduction of display
products and thus promotes the increase of production output and the users.
[0151] The seventh difference between the present invention and the prior art: the present
invention provides a photovoltaic solar device which includes solar battery, glass
substrate or outer cover plate manufactured with the flat glass which features high
annealing point, environmental protection, energy saving, emission reduction, high
strength, high evenness and low viscosity as set forth in any of the above embodiments;
its differences from the photovoltaic solar device include: First, since the content
of Al
2O
3 can be added with low cost during massive production (such as adding by 25-30%) as
well as the eutectic properties of aluminum, calcium and magnesium, the flat glass
which features high annealing point, environmental protection, energy saving, emission
reduction, high strength, high evenness and low viscosity of the present invention
is adopted to improve the strength by 1-2 time (s) when the equipment is not changed
and the cost is not increased; therefore, the solar device production, assembling,
installation and its use in severe and complex environment can greatly reduce the
damage probability and improve the arrangement and completeness; second, since the
glass substrate can be produced to improve the strength by 1-2 time (s), the glass
products can be thinned by 1-2 time (s), which is very suitable for the light weight
of photovoltaic solar device of the present invention, brings the convenience for
installation and transport and reduce the increasing cost; in particular, its application
in the wooden roof and external wall of buildings in Europe, America, Australia and
Southeast Asia can greatly reduce the weight load of the buildings; its use in wooden
house is safe, reliable and practical; it is very good for promoting the application
of new energy; third, since the glass can be thinned by 1-2 time (s), it can improve
the passage of solar energy and enhance the invention efficiency of solar energy.
[0152] The technical solutions of the present invention is also of novelty when being judged
by the principle of "separate comparison" for the novelty from the claims of the above
patent documents, embodiments or physical products.
[0153] The eighth difference between the present invention and the prior art: the difference
lies in that the processes from technical solutions of the present invention that
have never been disclosed and adopted in various patents and literatures. In the technical
solutions of the present invention, the said glass contains SiO
2, CaO, MgO, Al
2O
3, Fe
2O
3, TiO
2 and Na
2O; calculated as per weight percentage, the said flat glass contains B
2O
3 0-3.9%, Na
2O 0.01-8.8%, Fe
2O
3 0.01-5%, F
2O 0-2.8%, TiO
2 0.0003-4.9%, MgO 8.1-22.2%, and Al
2O
3 0.01-39%, wherein the content of SiO
2 is 1.9-4.1 or 2.0-3.6 times that of CaO, and the content of CaO is 1.2-1.6 or 1.3-1.49
times that of MgO; the thickness difference of the said flat glass is less than 0.3mm;
the water absorption of the said flat glass goes between 0- 0.3%; the flexural strength
of the said flat glass is up to 50-180Mpa. The processes of technical solution of
the present invention is characterized in that: step 1: all preset and indispensable
compositions in a special scope such as Na
2O, Fe
2O
3, Al
2O
3, SiO
2, CaO, MgO or TiO
2 and BaO and raw materials whose special ratios are preset among SiO
2, CaO and MgO are configured by the said glass formula; after being mixed and stirred,
they are melted under the melting temperature for each glass formula to form the liquid
glass with preset viscosity, then they are homogenized and clarified and discharge
bubbles to form flowing molten mass; step 2: the glass is molded by adopting float
process, horizontal drawing process, Glaverbel process, calendaring process or overflow
process. Moreover, this is a combined invention type with new applications, new product
applications and properties have been found, and the above unexpected technical effects
are generated.
[0154] The present invention is different from the new technical solutions of the above
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity of various types
and can save energy, protect environment, improve input-output ratio and production
efficiency, reduce the cost and viscosity temperature and enhance the strength; these
are the technical effects that are not expected and obvious in the industry; by reducing
the melting temperature, it can save the energy by 30-40%, reduce the emission of
CO
2 by 30-40% and enhance the product strength by 2-3 times; it is a combined invention
for display with new performance and photovoltaic solar device.
[0155] The present invention is innovatively designed by the inventor after years of practical
experience and summarization; the present invention and any previous technical solution
as stated above are the one consisting of technical element structure and the ratio
changes each other; the differences of product characteristics formed from new product
properties and innovative methods through the exploration of new application are available
(There are 3-5 or 4-5 differences between the claims or embodiments of any prior art
and the technical element characteristics of technical solutions of the present invention);
therefore, the product and its preparation technique extracted from the claims of
the specification are of novelty based on the judging principle of "separate comparison".
[0156] As pointed out above in the characteristics that the present invention differ from
the prior art, the unexpected technical effects produced from the technical solutions
of the present invention have solved the several major technical difficulties in the
flat glass which features high annealing point, environmental protection, energy saving,
emission reduction, high strength, high evenness and low viscosity and the techniques
that are expected to be solved but fail to be solved; such difficulties include: (1)
In the production of alkali-free boron glass especially TFT LCD, the productivity
efficiency can be enhanced by 20-30 times by adopting float process in the present
invention for production, and the ratio of investment and output can be enhanced by
dozens of times; (2) the effects of energy saving and emission reduction during production;
(3) After the half-plate glass with high strength in the world has become thin and
light by 1/3, it can save the raw material by 60%-70%, save energy by 60%-70% and
reduce emission by 60%-70%; (4) The discharge of poison gas from boron and cold repair
expense are expected to be solved; (5) The product strength is expected to be improved;
(6) The smoothness problem is expected to be solved; (7) The energy saving for inland
and ocean shipping are expected to be 60%-70%; the carbon emission during shipping
is expected to be reduced by 60%-70%; (8) The building glass is used in a lightweight
manner; (9) The controllably improved viscosity temperature of flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity and the improvement of product quality
are expected; the contribution to the technical development trends is of great significance.
[0157] The technical solutions of the present invention cannot be made by simple logical
reasoning or simple test; in particular, the unexpected technical progress effects
produced by the technical solutions are not obvious to the insiders; moreover, these
technical difficulties are the ones that are researched by thousands of enterprises
and hundreds of thousands of technicians in global electronic display material industry
and glass industry but have not been solved for nearly 10-20 years; the present invention
has solves the major technical difficulties that are expected to be solved in the
world flat glass which features high annealing point, environmental protection, energy
saving, emission reduction, high strength, high evenness and low viscosity and display
industry and solar energy industry as mentioned but fail to be solved as well as dozens
of technical difficulties that are mentioned in the specification and expected to
be solved but fail to be solved.
[0158] The above unexpected technical effects are attributed to a technical solution of
the invention that changes the ratio of technical solutions and a flat glass which
features high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity that changes its application; the new
product properties have never been revealed or disclosed by the prior art; for example,
it has broken through the prior art prejudices related to the eutectoid characteristics
such as the viscosity temperature, silicon, calcium and magnesium at each process
stage of the flat glass which features high annealing point, environmental protection,
energy saving, emission reduction, high strength, high evenness and low viscosity
in the technical solution of the present invention, strength, low aluminum or low
boron (within 1%), the unimproved annealing temperature, lower limit of high annealing
temperature (endothermic peak threshold temperature), low viscosity without boron
and high strength characteristics; the technical solutions of the present invention
broke through the conventional prejudices for the omission of fluxing elements such
as sodium, boron or fluorine in the prior art; the new technical solutions produce
the unexpected technical effects; these technical product properties are not predicted
and forecasted in advance; the present invention has overcome many technical prejudices,
generates the unexpected changes over "quality" and "quantity" whose technical difficulties
are expected to be solved but fail to be solved in the above flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity and display industry and new energy
industry; it proves that the technical solutions are not obvious but outstanding,
having the technical progress and innovativeness.
[0159] The above statement is only for explaining the preferential embodiments in the present
invention, but it is not a limitation for the present invention; any technicians who
are familiar with this technology may use the above revealed technical contents, amend
or modify the equivalent embodiments with the same changes; a flat glass which features
high annealing point, environmental protection, energy saving, emission reduction,
high strength, high evenness and low viscosity and its preparation method for display
and photovoltaic solar device can be implemented according to different requirements
and performances; it can be seen that it is still in the scope of technical solutions
of the present invention if it is not separated from the content of technical solutions
of the present invention, especially the content of claims no matter any simple amendment,
equivalent changes and modifications are made for the above embodiments according
to the technical essence of the present invention.